CROSS-REFERENCE TO RELATED APPLICATIONS
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0002] The research and development of the invention described below was not federally sponsored.
BACKGROUND OFTHE INVENTION
[0003] 1,3-Azole-containing amino acids have utility as analogues of natural amino acids
for incorporation into biologically active molecules. In particular, they are constituent
parts of many biologically active peptides and are useful in preparing antimicrobial
agents. Currently, no general method for their synthesis exists.
[0004] Saeed and Young have described the synthesis of L-beta-hydroxy amino acids using
an enzymatic method (
Saeed, A; Young, D.W; Tetr. 1992, 48, 2507-2514). Their method does not produce the 1,3-azole-containing amino acids synthesized
by the present inventive method, and their route gives a mixture of isomeric forms.
[0007] Palian and Polt report synthesis of lipophilic beta-hydroxy amino acids (
Palian, M; Polt, R., J. Org. Chem., 2001, 66, 7178-7183). These authors do not describe the methods of the present invention and they do
not describe the synthesis of 1,3-azole-containing amino acids.
[0008] Zhao et al, reported oxidation of primary alcohols to carboxylic acids using TEMPO
catalyst along with sodium chlorite and bleach (
Zhao et al., J. Org. Chem., 1999, 64, 2564-2566). They did not apply their method, however, to produce beta-hydroxy amino acids.
[0009] Barma et al. reported an oxidative removal of the N,N-dimethylthlocarbamate group
from alcohols (
Barma et al., Org. Lett., 2003, 5, 4755-4757). These authors do not describe the synthesis of 1,3-azole-containing amino acids.
[0010] The Garner aldehydes (
Gamer, P. Tetr. Lett., 1984, 25, 5855-5858;
Liang, X, et al., J. Chem. Soc. Perkin Trans. 1, 2001, 2136-2157), for which both the S and R configurations are commercially available, are configurationally
stable under many reaction conditions that are typically employed for the elaboration
of the aldehyde functionality. Lubell and Rapoport introduced the phenylfluorenyl-protected
oxazolidone as a serinal equivalent similar to Gamer's aldehyde, and the inclusion
of the phenylfluorenyl moiety greatly stabilizes the configuration of the α-proton
in products under basic conditions (
Lubell, W; Rapoport, H; J. Org. Chem., 1989, 54, 3824-3831). It has seen only limited utility in organic synthesis and has been commented by
Rapoport that the phenylfluorenyl group is known to be more acid-stable than the related
trityl group for other substrates. Both of these substrates allow for the selective
incorporation of nucleophiles into an intermediate for further derivatization.
[0011] Dondoni has utilized a variety of chiral, alpha-amino aldehydes as reactants in a
condensation reaction with 2-trimethylsilylthiazole (
Dondoni, A, et al., J. Org. Chem., 1990, 55, 1439-1446). The use of Gamer's aldehyde furnished the best results in terms of yield and selectivity.
Dondoni and others have generally utilized this thiazole chemistry as a method to
incorporate a formyl group, rather than functionalize the portion of the molecule
derived from Gamer's aldehyde.
[0013] Otsuka et. al. Tetrahedron letters, 27, 31, 3639-3642,
Kittaka et. al., Tetrahedron Letters, 27, 31, 3631-3634 and
Kittaka et al., Tetrahedron, 11, 10, 2811-2820 describe the structure of several PYML compounds in investigating bleomycin.
[0014] Hecht
et. al. describes the synthesis of L-erythro-β-amino-α-hydroxylaldhyde intermediates for
the preparation of the HIV protanaise inhibitor Ro 31-8959.
[0016] US 5,360,811 describes the production of erthryo-2-amino-1-[4-(1-dodecynyl)-2-thiazolyl]-1,3-propanediol
hydrochloride.
[0018] Thus, there is a need for a generalized method to synthesize 1,3-azole-containing
amino acids.
SUMMARY OF THE INVENTION
[0019] The present invention is directed to a process for assembly of diverse, 2-substituted
azole derivatives and novel intermediate compounds using available azoles as starting
materials. The rapid synthesis of such highly complex drug-like molecules is unexpected
and surprising.
[0020] Accordingly, the invention is directed to a method of synthesizing 2-substituted
azole derivatives of formula (I):

the method comprising
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

to give an oxazolidone of formula (Ia)

- (b) reacting the the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, cleave the O-(C=Q) bond, and open the oxazolidone, then reacting the resulting
intermediate with Prot-Z wherein Prot-Z is an amino protecting agent selected from
the group consisting of Prot-O-Prot, Prot-hatide, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ib)

and
- (c) oxidizing the intermediate of formula (Ib) to give the 2-substituted azole derivative
of formula (I);
[0021] An alternative method comprises
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

wherein Q = S and RVI is -NRVIIRVIII, to give an oxazolidone of formula (Ia)

- (b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or FmOC-O-C6F5, to give an azole-containing intermediate of formula (Ic)

and(c) reacting the intermediate of formula (Ic), so as to hydrolyze the O-(C=Q) bond
and oxazolidone then oxidize the intermediate to give the 2-substituted azole of formula
(I).
[0022] Another alternative method comprises
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

to give an oxazolidone of formula (Ia)

- (b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group,then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2COCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ic)

- (c) reacting the intermediate of formula (Ic) so as to hydrolyze the O-(C=Q) bond,
then reacting the intermediate with RII-L to give an intermediate of formula (Id);

and
- (d) reacting the intermediate of formula (Id) so as to hydrolyze the oxazolidone group,
then oxidizing the intermediate to give the 2-substituted azole of formula (I);
[0023] In the above methods, unless otherwise specified,
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy;
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, fluorinated C
1-8alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S;
Lis Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX or OCO
2R
IX ;
R
IX is fluorinated C
1-8alkyl, C
1-8alkyl C
6-10aryl, C
5-10arylC
1-8alkanyl, or C
5-10heteroaryl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
[0024] The invention is also directed to compounds of formulas (I), (Ia), (Ic), (Id), and
(II) and to certain compounds of formula (Ib) and to pharmaceutical compositions containing
them.
DETAILED DESCRIPTION OF THE INVENTION
[0025] As used herein, the following underlined terms are intended to have the following
meanings:
"Ca-b" (where a and b are integers) refers to a radical containing from a to b carbon atoms
inclusive. For example, C1-3 denotes a radical containing 1, 2 or 3 carbon atoms.
"Fluorinated alkyl" refers to a saturated branched or straight chain hydrocarbon radical derived by
removal of 1 hydrogen atom from the parent alkane; the parent alkane contains from
1 to 6 carbon atoms with 1 or more hydrogen atoms substituted with fluorine atoms
up to and including substitution of all hydrogen atoms with fluorine. Preferred fluorinated
alkyls include trifluoromethyl substituted alkyls and perfluorinated alkyls; more
preferred fluorinated alkyls include trifluoromethyl, perfluoroethyl, 2,2,2-trifluoroethyl,
perfluoropropyl, 3,3,3-trifluoroprop-1-yl, 3,3,3-trifluoroprop-2-yl, 1,1,1,3,3,3-hexafluoroprop-2-yl;
a particularly preferred fluorinated alkyl is trifluoromethyl.
"Fluorinated alkanyloxy" refers to a radical derived from a fluorinated alkyl radical attached to an oxygen
atom with the oxygen atom having one open valence for attachment to a parent structure.
"Alkyl" refers to a saturated or unsaturated, branched, straight-chain or cyclic monovalent
hydrocarbon radical derived by the removal of one hydrogen atom from a single carbon
atom of a parent alkane, alkene or alkyne. Typical alkyl groups include, but are not
limited to, methyl; ethyls such as ethanyl, ethenyl, ethynyl; propyls such as propan-1-yl,
propan-2-yl , cyclopropan-1-yl, prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl, cycloprop-1-en-1-yl;
cycloprop-2-en-1-yl, prop-1-yn-1-yl, prop-2-yn-1-yl, etc.; butyls such as butan-1-yl,
butan-2-yl, 2-methyl-propan-1-yl, 2-methyl-propan-2-yl, cyclobutan-1-yl, but-1-en-1-yl,
but-1-en-2-yl, 2-methyl-prop-1-en-1-yl, but-2-en-1-yl, but-2-en-2-yl, buta-1,3-dien-1-yl,
buta-1,3-dien-2-yl, cyclobut-1-en-1-yl, cyclobut-1-en-3-yl, cyclobuta-1,3-dien-1-yl,
but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, etc.; and the like. Where specific levels
of saturation are intended, the nomenclature "alkanyl", "alkenyl" and/or "alkynyl"
is used, as defined below. In preferred embodiments, the alkyl groups are (C1-8) alkyl, with (C1-3) being particularly preferred.
"Alkanyl:" refers to a saturated branched, straight-chain or cyclic monovalent hydrocarbon
radical derived by the removal of one hydrogen atom from a single carbon atom of a
parent alkane. Typical alkanyl groups include, but are not limited to, methanyl; ethanyl;
propanyls such as propan-1-yl, propan-2-yl, cyclopropan-1-yl, etc.; butyanyls such
as butan-1-yl, butan-2-yl, 2-methyl-propan-1-yl, 2-methyl-propan-2-yl, cyclobutan-1-yl,
etc.; and the like.
In preferred embodiments, the alkanyl groups are (C1-8) alkanyl, with (C1-3) being particularly preferred.
"Alkenyl:" refers to an unsaturated branched, straight-chain or cyclic monovalent hydrocarbon
radical having at least one carbon-carbon double bond derived by the removal of one
hydrogen atom from a single carbon atom of a parent alkene. The radical may be in
either the cis or trans conformation about the double bond(s). Typical alkenyl groups include, but are not
limited to, ethenyl; propenyls such as prop-1-en-1-yl, prop-1-en-2-yl, prop-2-en-1-yl,
prop-2-en-2-yl, cycloprop-1-en-1-yl; cycloprop-2-en-1-yl; butenyls such as but-1-en-1-yl,
but-1-en-2-yl, 2-methyl-prop-1-en-1-yl, but-2-en-1-yl, but-2-en-1-yl, but-2-en-2-yl,
buta-1,3-dien-1-yl, buta-1,3-dien-2-yl, cyctobut-1 -en-1-yl, cyclobut-1-en-3-yl, cyclobuta-1,3-dien-1-yl,
etc.; and the like. In preferred embodiments, the alkenyl group is (C2-8) alkenyl, with (C2-3) being particularly preferred.
"Alkynyl:" refers to an unsaturated branched, straight-chain or cyclic monovalent hydrocarbon
radical having at least one carbon-carbon triple bond derived by the removal of one
hydrogen atom from a single carbon atom of a parent alkyne. Typical alkynyl groups
include, but are not limited to, ethynyl; propynyls such as prop-1-yn-1-yl, prop-2-yn-1-yl,
etc.; butynyls such as but-1-yn-1-yl, but-1-yn-3-yl, but-3-yn-1-yl, etc.; and the
like. In preferred embodiments, the alkynyl group is (C2-8) alkynyl, with (C2-3) being particularly preferred.
"Alkyldiyl:" refers to a saturated or unsaturated, branched, straight-chain or cyclic divalent
hydrocarbon radical derived by the removal of one hydrogen atom from each of two different
carbon atoms of a parent alkane, alkene or alkyne, or by the removal of two hydrogen
atoms from a single carbon atom of a parent alkane, alkene or alkyne. The two monovalent
radical centers can form bonds with the same or different atoms. Typical alkyldiyls
include, but are not limited to methandiyl; ethyldiyls such as ethan-1,1-diyl, ethan-1,2-diyl,
ethen-1,1-diyl, ethen-1,2-diyl; propyldiyls such as propan-1,1-diyl, propan-1,2-diyl,
propan-2,2-diyl, propan-1,3-diyl, cyclopropan-1,1-diyl, cyclopropan-1,2-diyl, prop-1-en-1,1-diyl,
prop-1-en-1,2-diyl, prop-2-en-1,2-diyl, prop-1-en-1,3-diyl, cycloprop-1-en-1,2-diyl,
cycloprop-2-en-1,2-diyl, cycloprop-2-en-1,1-diyl, prop-1-yn-1,3-diyl, etc.; butyldiyls
such as, butan-1,1-diyl, butan-1,2-diyl, butan-1,3-diyl, butan-1,4-diyl, butan-2,2-diyl,
2-methyf-propan-1,1-diyl, 2-methyl-propan-1,2-diyl, cyclobutan-1,1-diyl; cyclobutan-1,2-diyl,
cyclobutan-1,3-diyl, but-1-en-1,1-diyl, but-1-en-1,2-diyl, but-1-en-1,3-diyl, but-1-en-1,4-diyl,
2-methyl-prop-1-en-1,1-diyl, 2-methylprop-2-en-1,1-diyl, buta-1,3-dien-1,1-diyl, buta-1,3-dien-1,2-diyl,
buta-1,3-dien-1,3-diyl, buta-1,3-dien-1,4-diyl, cyclobut-1-en-1,2-diyl, cyclobut-1-en-1,3-diyl,
cyclobut-2-en-1,2-diyl, cyclobuta-1,3-dien-1,2-diyl, cyclobuta-1,3-dien-1,3-diyl,
but-1-yn-1,3-diyl, but-1-yn-1,4-diyl, buta-1,3-diyn-1,4-diyl, etc.; and the like.
Where specific levels of saturation are intended, the nomenclature alkandiyl, alkendiyl
and/or alkyndiyl is used. In preferred embodiments, the alkyldiyl group is (C1-8) alkyldiyl, with (C1-8) being particularly preferred. Also preferred are saturated acyclic alkandiyl radicals
in which the radical centers are at the terminal carbons, e.g., methandiyl; ethan-1,2-diyl; propan-1,3-diyl; butan-1,4-diyl; and the like (also
referred to as alkylenos, as defined infra).
"Vic Alkyldiyl:" refers to a saturated or unsaturated, branched, straight-chain or cyclic hydrocarbon
radical having two adjacent monovalent radical centers derived by the removal of one
hydrogen atom from each of two adjacent carbon atoms of a parent alkane, alkene or
alkyne. The two monovalent radical centers can form bonds with the same or different
atom(s). Typical vic alkyldiyls include, but are not limited to vic ethyldiyls such as ethan-1,2-diyl, ethen-1,2-diyl; vic propyldiyls such as propan-1,2-diyl, cyclopropan-1,2-diyl, prop-1-en-1,2-diyl, prop-2-en-1,2-diyl,
cycloprop-1-en-1,2-diyl, etc; vic butyldiyls such as butan-1,2-diyl, 2-methyl-propan-1,2-diyl, cyclobutan-1,2-diyl,
but-1-en-1,2-diyl, cyclobut-1-en-1,2-diyl, buta-1,3-dien-1,2-diyl, cyclobuta-1,3-dien-1,2-diyl,
but-3-yn-1,2-diyl, etc.; and the like. Where specific levels of saturation are intended,
the nomenclature vic alkandiyl, vic alkendiyl and/or vic alkyndiyl is used. In preferred embodiments, the vic alkyldiyl group is (C2-8) vic alkyldiyl, with (C2-3) being particularly preferred.
"Gem Alkyldiyl:" refers to a saturated or unsaturated, branched, straight-chain or cyclic hydrocarbon
radical having one divalent radical center derived by the removal of two hydrogen
atoms from a single carbon atom of a parent alkane, alkene or alkyne. The divalent
radical center forms bonds with two different atoms. Typical gem alkyldiyls include, but are not limited to gem methanyldiyl; gem ethyldiyls such as ethan-1,1-diyl,ethen-1,1-diyl; gem propyldiyls such as propan-1,1-diyl, propan-2,2-diyl, cyclopropan-1,1-diyl, prop-1-en-1,1-diyl,
cycloprop-2-en-1,1-diyl, prop-2-yn-1,1-diyl, etc.; butyldiyls such as butan-1,1-diyl,
butan-2,2-diyl, 2-methyl-propan-1,2-diyl, cyclobutan-1,1-diyl, but-1-en-1,1-diyl,
2-methyl-prop-1-en-1,1-diyl, 2-methyl-prop-2-en-1,1-diyl, cyclobut-2-en-1,1-diyl,
buta-1,3-dien-1,1-diyl, etc.; and the like. Where specific levels of saturation are
intended, the nomenclature gem alkandiyl, gem alkendiyl and/or gem alkyndiyl is used. In preferred embodiments, the gem alkyldiyl group is (C1-6) gem alkyldiyl, with (C1-3) being particularly preferred.
"Alkyleno:" refers to a saturated or unsaturated, straight-chain or branched acyclic bivalent
hydrocarbon bridge radical derived by the removal of one hydrogen atom from each of
the two terminal carbon atoms of an acyclic parent alkane, alkene or alkyne. Typical
alkyleno groups include, but are not limited to, methano; ethylenos such as ethano,
etheno, ethyno; propylenos such as propano, propeno, prop-1,2-dieno, propyno, etc.;
butylenos such as butano, 2-methyl-propano, but-1-eno, but-2-eno, 2-methyl-prop-1-eno,
2-methanylidene-propano, but-1,3-dieno, but-1-yno, but-2-yno, but-1,3-diyno, etc.;
and the like. Where specific levels of saturation are intended, the nomenclature alkano,
alkeno and/or alkyno is used. In preferred embodiments, the alkyleno group is (C1-8) alkyleno, with (C1-3) being particularly preferred. Also preferred are straight-chain saturated alkano
radicals, e.g., methano, ethano, propano, butano, and the like.
"Alkylidene:" refers to a saturated or unsaturated, branched, straight-chain or cyclic divalent
hydrocarbon radical derived by removal of two hydrogen atoms from the same carbon
atom of a parent alkane, alkene or alkyne. The divalent radical center forms a double
bond with a single atom. Typical alkylidene radicals include, but are not limited
to, methanylidene, ethylidenes such as ethanylidene, ethenylidene; propylidenes such
as propan-1-ylidene, propan-2-ylidene, cyclopropan-1-ylidene, prop-1-en-1-ylidene,
prop-2-en-1-ylidene, cycloprop-2-en-1-ylidene, etc.; butylidenes such as butan-1-ylidene,
butan-2-ylidene, 2-methyl-propan-1-ylidene, cyclobutan-1-ylidene, but-1-en-1-ylidene,
but-2-en-1-ylidene, but-3-en-1-ylidene, buta-1,3-dien-1-ylidene; cyclobut-2-en-1-ylidene,
etc.; and the like. Where specific levels of saturation are intended, the nomenclature
alkanylidene, alkenylidene and/or alkynylidene is used. In preferred embodiments,
the alkylidene group is (C1-8) alkylidene, with (C1-3) being particularly preferred. Also preferred are acyclic saturated alkanylidene
radicals in which the divalent radical is at a terminal carbon, e.g., methanylidene, ethan-1-ylidene, propan-1-ylidene, butan-1-ylidene, 2-methyl-propan-1-ylidene,
and the like.
"Alkylidyne:" refers to a saturated or unsaturated, branched or straight-chain trivalent hydrocarbon
radical derived by removal of three hydrogen atoms from the same carbon atom of a
parent alkane, alkene or alkyne. The trivalent radical center forms a triple bond
with a single atom. Typical alkylidyne radicals include, but are not limited to, methanylidyne;
ethanylidyne; propylidynes such as propan-1-ylidyne, prop-2-en-1-ylidyne, prop-2-yn-1-ylidyne;
butylidynes such as butan-1-ylidyne, 2-methyl-propan-1-ylidyne, but-2-en-1-ylidyne,
but-3-en-1-ylidyne, buta-2,3-dien-1-ylidyne, but-2-yn-1-ylidyne, but-3-yn-1-ylidyne,
etc.; and the like. Where specific levels of saturation are intended, the nomenclature
alkanylidyne, alkenylidyne and/or alkynylidyne is used. In preferred embodiments,
the alkylidyne group is (C1-8) alkylidyne, with (C1-3) being particularly preferred. Also preferred are saturated alkanylidyne radicals,
e.g., methanylidyne, ethanylidyne, propan-1-ylidyne, butan-1-ylidyne; 2-methyl-propan-1-ylidyne,
and the like.
"Heteroalkyl, Heteroalkanyl, Heteroalkenyl, Heteroalkynyl, Heteroalkylidene, Heteroalkylidyne,
Heteroalkyldiyl, Vic Heteralkyldiyl, Gem Heteroalkyldiyl, Heteroalkyleno and Heteroalkyldiylidene:" refer to alkyl, alkanyl, alkenyl, alkynyl, alkylidene, alkylidyne, alkyldiyl, vic alkyldiyl, gem alkyldiyl, alkyleno and alkyldiylidene radicals, respectively, in which one or more
carbon atoms (and any necessary associated hydrogen atoms) are independently replaced
with the same or different heteroatoms (including any necessary hydrogen or other
atoms). Typical heteroatoms to replace the carbon atom(s) include, but are not limited
to, N, P, O, S, Si, etc. Preferred heteroatoms are O, N and S. Thus, heteroalkyl,
heteroalkanyl, heteroalkenyl, heteroalkynyl, heteroalkylidene, heteroalkylidyne, heteroalkyldiyl,
vic heteroalkyldiyl, gem heteroalkyldiyl, heteroalkyleno and heteroalkyldiylidene radicals can contain one
or more of the same or different heteroatomic groups, including, by way of example
and not limitation, epoxy (-O-), epidioxy (-O-O-), thioether (-S-), epidithio (-SS-),
epoxythio (-O-S-), epoxyimino (-O-NR'-), imino (-NR'-), biimmino (-NR'-NR'-), azino
(=N-N=), azo (-N=N-), azoxy (-N-O-N-), azimino (-NR'--N=N-), phosphano (-PH-), λ4-sulfano (-SH2-), sulfonyl (-S(O)2-), and the like, where each R' is independently hydrogen or (C1-C6) alkyl.
"Parent Aromatic Ring System:" refers to an unsaturated cyclic or polycyclic ring system having a conjugated π
electron system. Specifically included within the definition of "parent aromatic ring
system" are fused ring systems in which one or more rings are aromatic and one or
more rings are saturated or unsaturated, such as, for example, indane, indene, phenalene,
etc. Typical parent aromatic ring systems include, but are not limited to, aceanthrylene,
acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene,
fluoranthene, fluorene, hexacene, hexaphene, hexalene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene,
pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene,
pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like
"Aryl:" refers to a monovalent aromatic hydrocarbon radical derived by the removal of one
hydrogen atom from a single carbon atom of a parent aromatic ring system. Typical
aryl groups include, but are not limited to, radicals derived from aceanthrylene,
acenaphthylene, acephenanthrylene, anthracene, azulene, benzene, chrysene, coronene,
fluoranthene, fluorene, hexacene, hexaphene, hexalene, as-indacene, s-indacene, indane, indene, naphthalene, octacene, octaphene, octalene, ovalene, penta-2,4-diene,
pentacene, pentalene, pentaphene, perylene, phenalene, phenanthrene, picene, pleiadene,
pyrene, pyranthrene, rubicene, triphenylene, trinaphthalene, and the like. In preferred
embodiments, the aryl group is (C5-20) aryl, with (C5-10) being particularly preferred. Particularly preferred aryl groups are phenyl and
naphthyl groups.
"Arylalkyl:" refers to an acyclic alkyl group in which one of the hydrogen atoms bonded to a
carbon atom, typically a terminal carbon atom, is replaced with an aryl radical. Typical
arylalkyl groups include, but are not limited to, benzyl, 2-phenylethan-1-yl, 2-phenylethen-1-yl,
naphthylmethyl, 2-naphthylethan-1-yl, 2-naphthylethen-1-yl, naphthobenzyl, 2-naphthophenylethan-1-yl
and the like. Where specific alkyl moieties are intended, the nomenclature arylalkanyl,
arylakenyl and/or arylalkynyl is used. [In preferred embodiments, the arylalkyl group
is (C6-26) arylalkyl, e.g., the alkanyl, alkenyl or alkynyl moiety of the arylalkyl group is (C1-6) and the aryl moiety is (C5-20). In particularly preferred embodiments the arylalkyl group is (C6-13), e.g., the alkanyl, alkenyl or alkynyl moiety of the arylalkyl group is (C1-3) and the aryl moiety is (C5-10). Even more preferred arylalkyl groups are phenylalkanyls and most preferred is phenylmethyl
(i.e. benzyl).
"Alkanyloxy:" refers to a saturated branched, straight-chain or cyclic monovalent hydrocarbon
alcohol radical derived by the removal of the hydrogen atom from the hydroxide oxygen
of the alcohol. Typical alkanyloxy groups include, but are not limited to, methanyl;
ethanyloxy; propanyloxy groups such as propan-1-yloxy (CH3CH2CH2O-), propan-2-yloxy ((CH3)2CHO-), cyclopropan-1-yloxy, etc.; butyanyloxy groups such as butan-1-yloxy, butan-2-yloxy,
2-methyl-propan-1-yloxy, 2-methyl-propan'2-yloxy, cyclobutan-1-yloxy, etc.; and the
like. In preferred embodiments, the alkanyloxy groups are (C1-8) alkanyloxy groups, with (C1-3) being particularly preferred.
"Parent Heteroaromatic Ring System:" refers to a parent aromatic ring system in which one or more carbon atoms are each
independently replaced with a heteroatom. Typical heteratoms to replace the carbon
atoms include, but are not limited to, N, P, O, S, Si etc. Specifically included within
the definition of "parent heteroaromatic ring systems" are fused ring systems in which
one or more rings are aromatic and one or more rings are saturated or unsaturated,
such as, for example, arsindole, chromane, chromene, indole, indoline, xanthene, etc.
Typical parent heteroaromatic ring systems include, but are not limited to, arsindole,
carbazole, β-carboline, chromane, chromene, cinnoline, furan, imidazole, indazole,
indole, indoline, indolizine, isobenzofuran, isochromene; isoindole, isoindoline,
isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine,
phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran,
pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolizine, quinazoline,
quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene,
triazole, xanthene, and the like.
"Heteroaryl:" refers to a monovalent heteroaromatic radical derived by the removal of one hydrogen
atom from a single atom of a parent heteroaromatic ring system. Typical heteroaryl
groups include, but are not limited to, radicals derived from acridine, arsindole,
carbazole, β-carboline, chromane, chromene, cinnoline, furan, imidazole, indazole,
indole, indoline, indolizine, isobenzofuran, isochromene, isoindole, isoindoline,
isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine,
phenanthridine, phenanthroline, phenazine, phthalazine, pteridine, purine, pyran,
pyrazine, pyrazole, pyridazine, pyridine, pyrimidine, pyrrole, pyrrolizine, quinazoline,
quinoline, quinolizine, quinoxaline, tetrazole, thiadiazole, thiazole, thiophene,
triazole, xanthene, and the like. In preferred embodiments, the heteroaryl group is
a 5-20 membered heteroaryl, with 5-10 membered heteroaryl being particularly preferred.
Specific preferred heteroaryls for the present invention are chromene, cinnoline,
furan, imidazole, indazole, indole, indolizine, isobenzofuran, isochromene, isoindole,
isoquinoline, isothiazole, isoxazole, naphthyridine, oxadiazole, oxazole, perimidine,
phthalazine, pteridine, purine, pyran, pyrazine, pyrazole, pyridazine, pyridine, pyrimidine,
pyrrole, pyrrolizine, quinazoline, quinoline, quinolizine, quinoxaline, tetrazole,
thiadiazole, thiazole, thiophene, triazine, triazole.
"Substituted:" refers to a radical in which one or more hydrogen atoms are each independently
replaced with the same or different substituent(s). Typical substituents include,
but are not limited to, -X, -R, -O-, =O, -OR, -O-OR, -SR, -S-, =S, -NRR, =NR, -CX3, -CN, -OCN, -SCN, -NCO, -NCS, -NO, -NO2, =N2, -N3, -NHOH, -S(O)2O-, -S(O)2OH, -S(O)2R, -P(O)(O-)2, -P(O)(OH)2, -C(O)R, -C(O)X, -C(S)R, -C(S)X, -C(O)OR, -C(O)O-, -C(S)OR, -C(O)SR, -C(S)SR, -C(O)NRR, -C(S)NRR and -C(NR)NRR, where each X is independently
a halogen (preferably -F, -Cl or -Br) and each R is independently -H, alkyl, alkanyl,
alkenyl, alkynyl, alkylidene, alkylidyne, aryl, arylalkyl, arylheteroalkyl, heteroaryl,
heteroarylalkyl or heteroaryl-heteroalkyl, as defined herein. Preferred substituents
include hydroxy, halogen, C1-8alkyl, C1-8alkanyloxy, fluorinated alkanyloxy, fluorinated alkyl, C1-8alkylthio, C3-8cycloalkyl, C3-8cycloalkanyloxy, nitro, amino, C1-8alkylamino, C1-8dialkylamino, C3-8cycloalkylamino, cyano, carboxy, C1-7alkanyloxycarbonyl, C1-7alkylcarbonyloxy, formyl, carbamoyl, phenyl, aroyl, carbamoyl, amidino, (C1-8alkylamino)carbonyl, (arylamino)carbonyl and aryl(C1-8alkyl)carbonyl.
"Aroyl" refers to arylacyl substituents.
"Acyl" refers to alkylcarbonyl substituents.
[0026] With reference to substituents, the term "
independently" means that when more than one of such substituent is possible, such substituents
may be the same or different from each other.
[0027] Throughout this disclosure, the terminal portion of the designated side chain is
described first, followed by the adjacent functionality toward the point of attachment.
Thus, for example, a "phenylC
1-6alkanylaminocarbonylC
1-6alkyl" substituent refers to a group of the formula

[0028] The term "
subject" as used herein, refers to an animal, preferably a mammal, most preferably a human,
who has been the object of treatment, observation or experiment.
[0029] The term "
therapeutically effective amount" as used herein, means that amount of active compound or pharmaceutical agent that
elicits the biological or medicinal response in a tissue system, animal or human that
is being sought by a researcher, veterinarian, medical doctor or other clinician,
which includes alleviation of the symptoms of the disease or disorder being treated.
[0030] As used herein, the term "
composition" is intended to encompass a product comprising the specified ingredients in the specified
amounts, as well as any product which results, directly or indirectly, from combinations
of the specified ingredients in the specified amounts.
[0031] For the purposes of this invention, the term "
chemical library" means a collection of molecules prepared by the method of the invention based on
logical design by means of simultaneous or parallel chemical reactions. Each species
of molecule in the library is referred to as a member of the library.
[0032] Abbreviations used in the specification, particularly the Schemes and Examples, are
as follows:
| DIEA |
= |
Diisopropylethylamine |
| DMF |
= |
N,N-Dimethylformamide |
| DMSO |
= |
dimethylsulfoxide |
| Et |
= |
Ethyl (-CH2CH3) |
| Ex # |
= |
Example Number |
| Me |
= |
Methyl (-CH3) |
| Ph |
= |
Phenyl (-C6H5) |
| TEA |
= |
Triethylamine |
| TEMPO |
= |
2,2,6,6-tetramethyl-1-piperidinyloxy free radical |
| TFA |
= |
Trifluoroacetic acid |
| THF |
= |
Tetrahydrofuran |
[0033] The invention is directed to a method of synthesizing 2-substituted azole compunds
of formula (I):

the method comprising
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

to give an oxazolidone of formula (Ia)

- (b) reacting the the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, cleave the O-(C=Q) bond, and open the oxazolidone, then reacting the resulting
intermediate with Prot-Z wherein Prot-Z is an amino protecting agent selected from
the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ib)

and
- (c) oxidizing the intermediate of formula (Ib) to give the 2-substituted azole derivative
of formula (I);
[0034] An alternative method comprises
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)


wherein Q = S and RVI is -NRVIIRVIII, to give an oxazolidone of formula (Ia)

- (b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2COCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ic)

and
- (c) reacting the intermediate of formula (Ic), so as to hydrolyze the 0-(C=Q) bond
and oxazolidone then oxidize the intermediate to give the 2-substituted azole of formula
(I).
[0035] Another alternative method comprises
- (a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

to give an oxazolidone of formula (Ia)

- (b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2COCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ic)

- (c) reacting the intermediate of formula (Ic) so as to hydrolyze the O-(C=Q) bond,
then reacting the intermediate with RII-L to give an intermediate of formula (Id);

and
- (d) reacting the intermediate of formula (Id) so as to hydrolyze the oxazolidone group,
then oxidizing the intermediate to give the 2-substituted azole of formula (I);
[0036] In the above methods, unless otherwise specified,
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy;
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R' independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S;
L is Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX or OCO
2R
IX;
R
IX is fluorinated C
1-8alkyl, C
1-8alkyl C
5-10aryl, C
5-10arylC
1-8alkanyl, or C
5-10heteroaryl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
1-8heteroalkanyl, C
5-10heteroaryl, or Fmoc;
[0037] In preferred embodiments of the methods above, Prot is Boc, Fmoc, Alloc, Cbz, Ts,
and Mtr.
[0038] The invention is also directed to compounds of formulas (I), (Ia), (Ib), (Ic), (Id),
and (II) and to pharmaceutical compositions containing them. Thus, one aspect of the
present invention is directed to 2-substituted azole compounds of formula (I):

wherein
X is N or S;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
Y and A independently are C or N;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
[0039] The invention is also directed to a compound of of formula (Ia)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S; and
Ar
1, Ar
2 and Ar
3 Independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy.
[0040] The invention is also directed to a compound, of of formula (Ib)

wherein
X is N;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II is H, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
[0041] In preferred embodiments, Prot is Boc, Fmoc, Alloc, Cbz, Ts, and Mtr.
[0042] The invention is also directed to a compound of formula (Ic)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryi-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
[0043] In preferred embodiments Prot is Boc, Fmoc, Alloc, Cbz, Ts, and Mtr.
[0044] The invention is also directed to a compound of formula (Id)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II is H, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl , C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-
8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
In preferred embodiments Prot is Boc, Fmoc, Alloc, Cbz, Ts, or Mtr.
[0045] The invention is also directed to a compound of formula (II)

wherein Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy.
[0046] In preferred embodiments of the methods and compounds of the invention
- 1. Prot is Boc, Fmoc, Alloc, Cbz, Ts, or Mtr;
- 2. Prot is Boc or Cbz;
- 3. Prot is Boc;
- 4. Ar1, Ar2, and Ar3 are phenyl;
- 5. X is N;
- 6. A is C;
- 7. Y is C;
- 8. X is N, A is C, and Y is C;
- 9. Q is S;
- 10. E is a direct bond and RV is absent;
- 11. R is H;
- 12. RI is H;
- 13. R and RI taken together are -(CH=CH)2-;
- 14. RIV is C1-8alkyl C5-10arylC1-8alkanyl or C5-10arylC1-8heteroalkyl;
- 15. RIV is methyl, Benzyl or -CH2OCH2C6H5;
- 16. RV is absent, or H;
- 17. RIV and RV together, with E form a five to eight membered cyclic alkyl or cyclic heteroalkyl;
- 18. RIV and RV together with E form a 6 membered cyclic alkanyl;
- 19. RVI is NMe2;
- 20. RVII is C1-8alkyl;
- 21. RVIII is C1-8alkyl;
- 22. RVII and RVIII taken taken together form a three to seven membered cyclic alkanyl or cyclic heteroalkanyl;
- 23. L is Cl, Br, OSO2RIX, or O(CO)RIX ;
- 24. RIX is fluorinated C1-8alkyl, C1-8alkyl C5-10aryl, C5-10arylC1-8alkanyl, or C5-10heteroaryl;
- 25. L is Cl; and
- 26. combinations of 1 through 25, above.
[0047] Compounds of formulas (I), (Ia), and (Ib) may be prepared according to the method
of Scheme 1.

Compound II as prepared according to Scheme 4 is reacted with a 1,3-azole derivative
IV in the presence of a carbonylating agent and tertiary amine base. Upon completion
of the reaction and purification, the carbamate product la is treated with acid to
cleave the triarylmethyl-oxazolidone bond. Subsequent reaction with base hydrolyses
the carbamate and opens the oxazolidone to the amino alcohol. Treatment with an amino
protecting agent provides intermediate Ib. The resultant intermediate is oxidized
to furnish the product I.
[0048] Compounds of formulas (I) and (Ic) may be prepared according to the method of Scheme
2.

[0049] Compound la is treated with acid to cleave the triarylmethyl-oxazolidone bond and
the intermediate is reacted with an amino protecting agent to furnish product Ic.
Treatment of compound Ic with oxidant and base affords the 2-substituted azole of
formula I.
[0050] Compounds of formulas (I) and (Id) may be prepared according to the method of Scheme
3.

[0051] Treatment of compound Ic with oxidant and reacting the intermediate with an R
II-L group provides intermediate Id. Hydrolysis of the oxazolidone in Id followed by
oxidation of the intermediate provides 2-substituted azole of formula I.
[0052] Aldehydes of formula (II) may be prepared according to the process outlined in Scheme
4.

[0053] N-(Triarylmethyl)serine alkyl ester is reacted with a carbonylating agent and base
to furnish an oxazolidone intermediate. The ester of this intermediate is subsequently
reduced to provide the alcohol IIb. The Compound IIb is oxidized to furnish aldehyde
II.
[0054] Azoles of formula (III) are commercially available or may be prepared according to
methods known in the art.
[0055] The following Examples are set forth to aid in the understanding of the invention,
and are not intended and should not be construed to limit in any way the invention
set forth in the claims which follow thereafter.
Example 1
[0056]

[0057] Commercially available N-tritylserine methyl ester (15.0 g, 41.5 mmol) in 350 mL
toluene was stirred with triethylamine (16 mL, 115 mmol) until the solids were dissolved.
A solution of phosgene (20% w/w in toluene, 25 mL, 47.2 mmol) was then added and the
solution was stirred for 2 h. The mixture was then poured into 100 mL 1N HCl, and
the layers separated. To the aqueous layer was then added 40 mL 3N NaOH, which was
then extracted twice with 100 mL 1:1 toluene:dichloromethane. The combined organic
layers were then washed once with 100 mL 1 N HCl, twice with 100 mL 1 N NaOH, and
once with 100 mL brine. The solution was dried over sodium sulfate then passed through
a pad of silica gel (0.5", 500 mL sintered glass funnel). The silica was washed with
250 mL ethyl acetate and concentrated under vacuum to afford a crude foam (16.5 g,
>100%).
[0058] The above prepared solid was dissolved in 300 ml dry THF and cooled in a dry ice-2-propanol
bath to an internal temperature of -65 °C. A solution of lithium aluminum hydride
(1M in THF, 50 mL) was then added dropwise over 45 min. After an additional 15 min,
the solution was allowed to slowly warm to -10 °C over 45 min before being recooled
to -45 °C, at which time excess hydride was quenched by the addition of 25 mL ethyl
acetate, followed by the addition of 2.5 mL water, 2.5 mL 3N NaOH, then 7.5 mL water.
The solution was stirred 1 h at ambient temperature before a saturated solution of
sodium-potassium tartrate (40 mL) was added. The mixture was stirred 30 min then decanted
through diatomaceous earth. The solids were washed with 100 mL water, then twice with
100 mL ethyl acetate. A saturated solution of sodium bicarbonate (150 mL) was added
and the layers were separated, then the aqueous layer extracted twice with 100 mL
ethyl acetate. The combined organic layers were washed once with 100 mL saturated
sodium-potassium tartrate and once with 150 mL brine, dried over sodium sulfate and
concentrated under vacuum to afforded alcohol IIIb (14.4 g, 97%) as a yellow foam.
[0059] A solution of oxallyl chloride (1.4 mL, 16 mmol) in 60 mL dichloromethane was cooled
to -78 °C then treated with DMSO (2.2 mL, 31 mmol). After 20 min, a solution of alcohol
IIIb (3.61 g, 10 mmol) in 20 mL dichloromethane was added dropwise over 20 min. After
stirring an additional 40 min, DIEA (10.6 mL, 61 mmol) was added, stirred for 15 min
then allowed to warm to ambient temperature. The solution was poured into 100 mL 1
N HCl, separated and the aqueous phase was extracted twice with 50 mL dichloromethane.
The combined organic phases were washed twice with 50 mL saturated sodium bicarbonate,
once with 50 mL brine, dried over sodium sulfate, then concentrated under vacuum.
The light tan foam was dissolved in 10 mL ethyl acetate before the addition of 200
mL hexanes. The solids that precipitated were triturated overnight, filtered and washed
twice with 100 mL hexanes. After being dried under vacuum, compound 1 was isolated
as a light tan solid (2.9.9 g, 84%).
Example 2
[0060]

[0061] Compound 1 (450 mg, 1.25 mmol) and 1-benzylimidazote (159 mg, 1.0 mmol) were dissolved
in 5 mL acetonitrile. N,N-Dimethylcarbamoyl chloride (0.125 mL, 1.35 mmol) and N,N-diisopropylethylamine
(0.53 mL, 3.0 mmol) were then added. After stirring for 3 days, the solution was poured
into 10 mL water and 20 mL dichloromethane. The layers were separated and the aqueous
layer was extracted with an additional 10 mL dichloromethane. The combined organic
extracts were washed once with 20 mL 1 N sodium hydroxide and once with 20 mL brine,
dried over sodium sulfate and purified on silica gel column chromatography with a
mixture of 10% ethyl acetate in hexanes to 75% ethyl acetate. Compound 2 was isolated
as an off-white foam, 420 mg (72% yield). HRMS: 587.2662 (calc. 587.2658 for MH
+)
Example 3
[0062]

[0063] Compound 2 (600 mg, 1.02 mmol) was dissolved in a solution of 1% water in trifluoroacetic
acid and stirred at ambient temperature until the cleavage of the trityl group was
complete. The solution was concentrated under vacuum then the crude intermediate was
dissolved in 18 mL of a 2:1 solution of ethanol:water. Solid potassium hydroxide (2.0
g, 30 mmol) was added and the solution was heated to reflux for 18 hours. The intermediate
was extracted by acidification of the solution with conc. hydrochloric acid and partitioning
between 30 mL diethyl ether and 20 mL water. Separation of the layers and extraction
of the organic layer with 20 mL 1 N hydrochloric acid was followed by neutralization
of the combined aqueous extracts with solid sodium bicarbonate. 1,4-Dioxane (25 mL)
was added to the aqueous solution followed by potassium hydroxide (560 mg, 8.5 mmol)
and di-tert-butyldicarbonate (0.3 mL, 1.3 mmol). The solution was stirred at ambient
temperature for 1 h, then heated to reflux for 20 min, cooled then extracted 3 times
with 50 mL dichloromethane. The organic extract was washed with 50 mL brine, dried
over sodium sulfate and concentrated under vacuum. Purification of the crude product
by silica gel column chromatography using a gradient of 0-5% methanol in ethyl acetate
provides the Compound 3 (140 mg, 40% yield).
HRMS: 348.1927 (calc. 348.1923 for MH
+)
Example 4
[0064]

[0065] Compound 3 (17 mg, 0.049 mmol), TEMPO (2 mg, 0.012 mmol) and sodium chlorite (16
mg, 0.142 mmol) were dissolved in a mixture of 0.5 mL acetonitrile and 0.5 mL phosphate
buffer (0.5M, pH = 6.8). A solution of bleach (6% aqueous, 0.06 mL, 0.049 mmol, diluted
to 0.25 mL with water) was added via syringe pump to the solution at a rate of 0.01
mL/h at a temperature of 45 °C. After 24 h, the pH of the solution was adjusted to
pH = 9 with 1 N NaOH and diethyl ether was added (2 mL). The layers are separated
and the organic layer was extracted once with 2 mL 1 N NaOH. The combined aqueous
extracts are acidified to pH = 3 with conc. hydrochloric acid, saturated with solid
sodium chloride then extracted 5 times with 5 mL ethyl acetate. The combined organic
extracts were concentrated in vacuo to furnish compound 4 (10 mg, 56%).
HRMS: 362.1732 (calc. 362.1716 for MH
+).
Example 5
[0066]

[0067] Compound 1 (1.79 g, 5 mmol) and 1-benzylimidazole (0.95 g, 6 mmol) were dissolved
in 20 mL acetonitrile. N,N-Dimethylthiocarbamoyl chloride (0.95 g, 7.7 mmol) and triethylamine
(2.2 mL, 15.8 mmol) were then added. After stirring for 5 days, the solution was poured
into 20 mL saturated sodium bicarbonate solution, and extracted 3 times with 20 mL
ethyl acetate. The combined organic extracts were washed once with 20 mL brine, dried
over sodium sulfate, concentrated and purified on silica gel column chromatography
with a mixture of 0%-100% ethyl acetate in hexanes. Compound 5 was isolated as an
off-white foam, 2.20 g (73% yield).
HRMS: 603.2437 (calc. 603.2430 for MH
+)
Example 6
[0068]

[0069] Compound 5 (940 mg, 1.5 mmol) was dissolved in a 10:1 solution of trifluoroacetic
acid:water (6.6 mL) and stirred at ambient temperature until the cleavage of the trityl
group was complete (4-24 h). The solution was concentrated under vacuum, azeotroped
with toluene and the resultant foam dissolved in DMF (10 mL). Potassium carbonate
(3.0 g, 21.7 mmol) was added, the solution stirred for 20 min then 4-dimethylaminopyridine
was added (17 mg, 0.14 mmol) followed by di-tert-butyldicarbonate (0.6 mL, 2.6 mmol).
After 5 h, the solution was poured into 30 mL water and extracted 4 times with 20
mL ethyl acetate. The combined organic extracts were washed once with 20 mL brine,
dried over sodium sulfate and concentrated under vacuum. Purification on silica gel
using a gradient elution of 25%-100% ethyl acetate in hexanes afforded compound 6
as a white foam (625 mg, 91%).
HRMS: 461.1870 (calc. 461.1859 for MH
+)
Example 7
[0070]

[0071] Compound 6 (46 mg, 0.1 mmol) was dissolved in 4 mL methanol. Water (0.2 mL) was added,
followed by sodium periodate (90 mg, 0.42 mmol). The solution was heated at 45 °C
for 8-15 h until the starting material was consumed. Sodium carbonate (91 mg, 0.86
mmol) was then added and heating was continued for an additional 4 h. The solution
was diluted with 5 mL water and extracted 4 times with 10 mL ethyl acetate. The combined
organic extracts are dried over sodium sulfate and concentrated under vacuum. Compound
4 was isolated following purification by reverse phase HPLC (18 mg, 50% yield) as
a white gum.
Example 8
[0072]

[0073] Compound 3 (16 mg, 0.46 mmol) and
p-toluenesulfonic acid monohydrate (1 mg, 0.05 mmol) were dissolved in 0.5 mL toluene.
2,2-Dimethoxypropane (0.5 mL) was added and the mixture was heated at 100 °C until
the starting material was consumed. The reaction mixture was cooled to ambient temperature,
diluted with 10 mL ether and washed once with 10 mL 1 N NaOH, once with 10 mL 0.5
N HCl, and once with 10 mL brine. The aqueous extracts were further extracted three
times with dichloromethane (10 mL each), and the combined organic phases were dried
over sodium sulfate and concentrated under vacuum. The product was isolated as a white
foam (17 mg, 95% yield). Analysis of the 1H-NMR spectrum permitted the determination
of the relative configuration. When Compound 3 is observed in a chair confirmation,
the value of the
1H-
1H coupling constant between the CHO and CHN protons is indicative of a trans-relationship.
Examples 9-13
[0074] Selected compounds listed in Table 1 were prepared following the procedure outlined
in Example 5 with appropriate selection and substitution of reagents, as listed in
Table 2.
TABLE 1
| Ex # |
X |
A |
Y |
Q |
E |
R |
RI |
RIV |
RV |
RVI |
Ar1 |
Ar2 |
Ar3 |
| 9 |
N |
C |
C |
S |
direct bond |
H |
H |
CH2OBn |
absent |
NMe2 |
Ph |
Ph |
Ph |
| 10 |
N |
C |
C |
S |
direct bond |
-(CH=CH)2- |
Me |
absent |
NMe2 |
Ph |
Ph |
Ph |
| 11 |
N |
C |
C |
S |
direct bond |
H |
H |
Me |
absent |
NMe2 |
Ph |
Ph |
Ph |
| 12 |
N |
C |
C |
S |
CH |
H |
H |
Me |
H |
NMe2 |
Ph |
Ph |
Ph |
| 13 |
N |
C |
C |
S |
CH |
H |
H |
-(CH2)3- |
NMe2 |
Ph |
Ph |
Ph |
TABLE 2-Preparation Conditions
| Ex # Ex |
Reaction Temp (°C) |
Reaction Time (h) |
Yield (%) |
HRMS (calc. MH+) |
| 9 |
25 |
120 |
77 |
633.2526
(633.2536) |
| 10 |
25 |
120 |
60 |
577.2285
(577.2273) |
| 11 |
25 |
120 |
75 |
527.2
(527.2117) |
| 12 |
25 |
120 |
45 |
541.2271
(541.2273) |
| 13 |
25 |
72 |
20 |
567.2444
(567.2430) |
Examples 14-19
[0075] Selected compounds listed in Table 3 were prepared following the procedure outlined
in Example 6, with appropriate selection and substitution of reagents, as listed in
Table 4.
TABLE 3
| Ex # |
X |
A |
Y |
Q |
E |
R |
RI |
RIV |
RV |
RV |
Prot |
| 14 |
N |
C |
C |
S |
direct bond |
H |
H |
CH2OBn |
absent |
NMe2 |
Boc |
| 15 |
N |
C |
C |
S |
direct bond |
-(CH=CH)2- |
Me |
absent |
NMe2 |
Boc |
| 16 |
N |
C |
C |
S |
direct bond |
H |
H |
Me |
absent |
NMe2 |
Boc |
| 17 |
N |
C |
C |
S |
direct bond |
H |
H |
Bn |
absent |
NMe2 |
Cbz |
| 18 |
N |
C |
C |
S |
CH |
H |
H |
Me |
H |
NMe2 |
Boc |
| 19 |
N |
C |
C |
S |
CH |
H |
H |
-(CH2)3- |
NMe2 |
Boc |
TABLE 4-Preparation Conditions
| Ex # |
Base, Prot-Z |
Reaction Temp (°C) |
Reaction Time (h) |
Yield
(%) |
HRMS (calc. MH+) |
| 14 |
K2CO3, Boc2O |
25 |
24 |
73 |
491.1953
(491.1964) |
| 15 |
K2CO3, BOc2O |
25 |
1 |
75 |
435.1698
(435.1702) |
| 16 |
K2CO3, Boc2O |
25 |
24 |
70 |
385.1554
(385.1546) |
| 17 |
NaH, Cbz-Cl |
25 |
1 |
65 |
(495.1709)
(495.1702) |
| 18 |
K2CO3, Boc2O |
25 |
18 |
79 |
399.1702
(399.1702) |
| 19 |
K2CO3, Boc2O |
25 |
2 |
80 |
(425.1869)
(425.1859) |
[0076] Selected spectral data for compounds of the invention are listed in Table 5.
TABLE 5
| Ex # |
Structure |
Spectral Data |
| 1 |

|
1H-NMR (CDCl3, 400 MHz) δ 9.23 (d, 1H, J = 3.1 Hz), 7.32 (m, 15H), 4.51 (dd, 1H, J = 9.5, 9.5 Hz), 4.37 (ddd, 1H, J = 3.1, 4.5, 9.5 Hz), 4.22 (dd, 1H, J = 4.5, 9.2 Hz); 13C-NMR (CDCl3, 100 MHz) δ 197.0, 156.8, 141.7, 130.0, 128.2,128.1, 74.3, 64.3, 62.9; |
| 5 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.35-7.30 (m, 9H), 7.27-7.22 (m, 6H), 7.21-7.16 (m, 3H), 7.00 (m, 2H),
6.91 (d, 1H, J = 1.2 Hz), 6.43 (d, 1H, J = 1.2 Hz), 6.06 (s, 1H), 5.67 (d, 1H, J =
8.9 Hz), 4.82 (d, 1H, J = 15.1 Hz), 4.56 (t, 1H, J = 8.6 Hz), 4.51 (d, 1H, J = 8.6
Hz) 4.12 (d, 1H, J = 15.0 Hz), 3.36 (s, 3H), 3.12 (s, 3H); 13C-NMR (CDCl3, 100 MHz) 8186.3, 158.2, 142.9, 142.4, 135.6, 130.5, 128.8, 128.5, 128.2, 127.9,
127.5, 120.2, 74.5, 72.9, 63.8, 59.5, 49.6, 43.3, 38.5 (one aromatic peak missing
due to signal overlap); |
| 6 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.44 (d, 1H, J = 1.2 Hz), 7.34-7.26 (m, 2H), 7.07-7.03 (m, 3H), 6.97
(d, 1H, J = 1.2 Hz), 5.45 (d, 1H, J = 16.1 Hz), 5.01-4.94 (m, 2H), 4.59 (m, 1H), 3.18
(s, 3H), 2.78 (s, 3H), 1.52 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.1, 152.1, 149.1, 142.8, 136.8, 128.7, 128.5, 127.9, 126.5, 122.3,
84.4, 71.2, 64.0, 57.1, 49.7, 43.4,37.7,28.1; |
| 9 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.37-7.19 (m, 20H), 7.04 (d, 1H, J = 1.2 Hz), 6.92 (d, 1H, J = 1.2 Hz),
6.00 (s, 1H); 5.36 (d, 1H, J = 9.0 Hz), 5.26 (s, 1H), 4.78 (d, 1H, J = 10.5 Hz), 4.67
(d, 1H, J = 10.5 Hz), 4.46 (d, 1H; J = 8.8 Hz), 4.38 (t, 1H, J = 8.9 Hz), 4.31 (d,
1H, J = 14.3 Hz), 4.28 (d, 1H, J = 14.3 Hz), 3.36 (s, 3H), 3.17 (s; 3H); 13C-NMR (CDCl3, 100 MHz) δ 185.8, 157.8, 142.4, 142.1, 136.4, 130.2, 128.5, 128.1, 127.9, 127.75,
127.72, 127.3, 119.7, 74.7, 74.4, 72.9, 70.8, 63.3, 58.8, 43.2, 38.3 |
| 10 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.69 (m, 1H), 7.36-7.19 (m, 18 H), 6.01 (s, 1H), 5.89 (d, 1H, J = 8.9
Hz), 4.53 (t, 1H, J = 8.6 Hz), 4.48 (d, 1H, J = 8.4 Hz), 3.35 (s, 3H), 3.17 (s, 3H),
3.13 (s, 3H); 13C-NMR (CDCl3, 100 MHz) δ 186.3, 157.7, 149.0, 142.3, 142.3, 135.1, 130.4, 127.8, 127.4, 123.1,
122.3, 120.0, 109.6, 74.0, 72.6, 63.3, 59.0, 43.2, 38.6, 30.0 |
| 12 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.21-7.08 (m, 15H), 6.80 (d, 1H, J =1.1 Hz), 6.69 (d, 1H, J =1.1 Hz),
4.73 (t, 1H, J = 9.0 Hz), 4.68 (dd, 1H, J = 4.2, 11.1 Hz), 4.62 (d, 2H, J = 8.0 Hz),
3.47 (s, 3H), 3.40 (s, 3H), 3.23 (dd, 1H, J = 4.2, 14.3 Hz), 3.15 (s, 3H), 2.69 (dd,
1H, J = 11.1, 14.3 Hz); 13C-NMR (CDCl3, 100 MHz) δ 186.9, 158.0, 142.3, 142.2, 130.5, 127.9, 127.8, 127.5, 121.7, 78.2,
74.2, 63.3, 57.2, 43.4, 38.6, 33.8, 28.3; |
| 13 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.25-7.13 (m, 15H), 6.88 (d, 1H, J = 1.2 Hz), 6.74 (d, 1H, J = 1.2 Hz),
5.16 (d, 1H, J = 10.6 Hz), 4.83 (m, 1H), 4.76 (m, 2H), 3.82 (dd, 1H, J = 5.6, 12.2
Hz), 3.70 (dt, 1H, J = 5.2, 12.2 Hz), 3.49 (s, 3H), 3.27 (s, 3H), 3.06 (m, 1H), 2.08
(m, 1H), 1.91 (m, 1H), 1.69 (m, 1H) 1.52 (dddd, 1H, J = 2.8, 5.6, 13.8, 13.8 Hz);
13C-NMR (CDCl3, 100 MHz) δ 188.0, 158.8, 141.7, 130.5, 127.7, 127.3, 127.0, 118.7, 79.4, 75.1, 63.8,
57.8, 44.6, 43.6, 38.2, 36.6, 21.8, 19.1 (one aromatic signal missing due to signal
overlap); |
| 14 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.37-7.27 (m, 5H), 7.07 (d, 1H, J = 1.2 Hz), 7.05 (d, 1H, J = 1.2 Hz),
5.72 (d, 1H, J = 10.6 Hz), 5.45 (d, 1H, J = 10.6 Hz), 5.18 (dd, 1H, J = 3.0, 9.8 Hz),
4.80 (ddd, 1H, J = 1.8, 2.8, 8.8 Hz), 4.55 (ddd, 1H, J = 11.6, 11.6, 18.9,), 4.47
(t, 1H, J = 9.2 Hz), 3.29(s, 3H), 3.08 (s, 3H), 1.57 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.2, 152.2, 142.9, 136.5, 128.6, 128.5, 128.2, 127.8, 121.4, 84.6,
74.9, 70.7, 70.6, 63.3, 57.0, 43.4, 38.0, 28.1; |
| 15 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.74 (d, 1H, J = 7.9 Hz), 7.42 (d, 1H, J = 1.6 Hz), 7.39 (d, 1H, J =
8.4 Hz), 7.34 (dd, 1H, J = 1.2, 7.0 Hz), 7.32 (dd, 1H, J = 1.4, 3.6 Hz), 7.28 (dd,
1H, J = 1.2, 7.0 Hz), 5.25 (dd, 1H, J = 2.8, 9.8 Hz), 4.91 (ddd, 1H, J = 1.6, 2.8,
8.9 Hz), 4.57 (t, 1H, J = 9.2 Hz), 3.95 (s, 3H), 3.73 (s, 1H), 3.36 (s, 3H), 1.60
(s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.3, 152.0, 149.1, 148.6, 142.2, 135.7, 123.6, 122.6, 120.1, 109.7,
84.7, 71.4, 63.5, 57.0, 43.6, 38.2, 30.7, 28.1; |
| 16 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.21 (d, 1H, J = 1.6 Hz), 6.99 (d, 1H, J = 1.1 Hz), 6.89 (d, 1H, J =
1.1 Hz), 5.22 (dd, 1H, J = 2.8, 9.6 Hz), 4.75 (ddd, 1H, J = 1.6, 2.8, 8.9 Hz), 3.82
(s, 3H), 3.39 (s, 3H), 3.16 (s, 3H), 1.59 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.5, 152.1, 149.2, 142.6, 128.4, 122.3, 84.6, 70.8, 63.5, 57.3, 43.5,
38.2, 33.7, 28.2; |
| 17 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.44-7.39 (m, 3H), 7.35-7.25 (m, 5H), 7.05-6.98 (m, 3H), 6.93 (d, 1H,
J = 1.2 Hz), 5.33 (d, 1H, J = 16.0 Hz), 5.28 (s, 2H), 5.17 (d, 1H, J = 16.0 Hz), 5.07
(dd, 1H, J = 3.0, 9.8 Hz), 4.95 (ddd, 1H, J = 1.5, 3.0, 8.9 Hz), 4.59 (t, 1H, J =
8.9 Hz), 3.17 (s, 3H), 2.78 (s, 3H); 13C-NMR (CDCl3, 100 MHz) δ185.9, 151.7, 150.3, 142.3, 136.5, 134.8, 128.6, 128.6, 128.5, 128.5,
128.4, 127.8, 126.5, 122.1, 70.7, 69.0, 64.1, 57.0, 49.6, 43.3, 37.6 |
| 18 |

|
1H-NMR (CDCl3, 400 MHz) δ 6.94 (d, 1H, J =1.2 Hz), 6.85 (d, 1H, J = 1.2 Hz), 5.96 (ddd, 1H, J =
1.2, 4.2, 10.9 Hz), 4.71 (ddd, 1H, J =1.5, 4.2, 7.2 Hz), 4.49 (m, 1H), 3.82 (s, 3H),
3.44 (dd, 1H, J = 4.:9,14.5 Hz), 3.45 (s, 3H), 3.12 (s, 3H), 2.96 (dd, 1H, J = 10.9,
14.5 Hz), 1.41 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.4,152.5, 148.2,142.4,129.6, 127.7, 121.6, 115.5, 84.1, 76.6, 62.3,
55.6, 43.1, 37.9, 33.6, 28.0, 27.8; |
| 19 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.16 (s, 1H), 6.95 (s, 1H), 6.41 (d, 1H, J =11 Hz), 5.01 (d, 1H, J =
8.3 Hz), 4.63 (dd, 1H, J = 2.5, 9.5 Hz), 4.55 (dd, 1H, J = 9.0, 9.0 Hz), 4.16 - (ddd,
1H, J = 3.0, 6.0, 12.5), 3.97 (dddd, 1H, J = 5.4, 5.4, 10.8, 10.8 Hz), 3.60 (m, 1H),
3.37 (s, 3H), 3.18 (s, 3H), 2.52 (m, 1H), 2.13 (dddd, 1H, J = 3.0, 3.0, 6.0, 13.8
Hz), 1.99 (m, 1H), 1.88 (m, 1H), 1.40 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 187,3, 151.9, 148.3, 142.4, 125.3, 119.7, 83.8, 77.0 (CH-O, confirmed
by HMQC), 62.5, 56.5, 45.3, 437, 37.9, 34.7, 27.9, 22.0, 19.3; |
[0077] The compounds of the invention are useful as intermediates in the sythesis of biologically
important targets such as antimicrobial agents.
[0078] The compounds of the present invention may also be present in the form of pharmaceutically
acceptable salts. For use in medicine, the salts of the compounds of this invention
refer to non-toxic "pharmaceutically acceptable salts" (
Ref. International J. Pharm., 1986, 33,201-217;
J. Pharm.Sci., 1997 (Jan), 66, 1, 1). Other salts may, however, be useful in the preparation of compounds according to
this invention or of their pharmaceutically acceptable salts. Representative organic
or inorganic acids include, but are not limited to, hydrochloric, hydrobromic, hydriodic,
perchloric, sulfuric, nitric, phosphoric, acetic, propionic, glycolic, lactic, succinic,
maleic, fumaric, malic, tartaric, citric, benzoic, mandelic, methanesulfonic, hydroxyethanesulfonic,
benezenesulfonic, oxalic, pamoic, 2-naphthalenesulfonic,
p-toluenesulfonic, cyclohexanesulfamic, salicylic, saccharinic or trifluoroacetic acid.
Representative organic or inorganic bases include, but are not limited to, basic or
cationic salts such as benzathine, chloroprocaine; choline, diethanolamine, ethylenediamine,
meglumine, procaine, aluminum, calcium, lithium, magnesium, potassium, sodium and
zinc.
[0079] Also described are prodrugs of the compounds of this invention. In general, such
prodrugs will be functional derivatives of the compounds which are readily convertible
in vivo into the required compound. Thus, where the compounds of the present invention are
used in methods of treatment, the term "administering" shall encompass the treatment
of the various disorders described with the compound - specifically disclosed or with
a compound which may not be specifically disclosed, but which converts to the specified
compound
in vivo after administration to the subject. Conventional procedures for the selection and
preparation of suitable prodrug derivatives are described, for example, in "
Design of Prodrugs", ed. H. Bundgaard, Elsevier, 1985.
[0080] The compounds according to this invention possess two or more chiral centers, they
exist as enantiomers and diastereomers. It is to be understood that all such isomers
and mixtures thereof are encompassed within the scope of the present invention. Furthermore,
some of the crystalline forms for the
| 18 |

|
1H-NMR (CDCl3, 400 MHz) δ 6.94 (d, 1H, J = 1.2 Hz), 6.85 (d, 1H, J = 1.2 Hz), 5.96 (ddd, 1H, J
= 1.2, 4.2, 10.9 Hz), 4.71 (ddd, 1H, J = 1.5, 4.2, 7.2 Hz), 4.49 (m, 1H), 3.82 (s,
3H), 3.44 (dd, 1H, J = 4.2, 14.5 Hz), 3.45 (s, 3H), 3.12 (s, 3H), 2.96 (dd, 1H, J
= 10.9, 14.5 Hz), 1.41 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 186.4, 152.5, 148.2, 142.4, 129.6, 127.7, 121.6, 115.5, 84.1, 76.6, 62.3,
55.6, 43.1, 37.9, 33.6, 28.0, 27.8; |
| 19 |

|
1H-NMR (CDCl3, 400 MHz) δ 7.16 (s, 1H), 6.95 (s, 1H), 6.41 (d, 1H, J = 11 Hz), 5.01 (d, 1H, J =
8.3 Hz), 4.63 (dd, 1H, J =2.5, 9.5 Hz), 4.55 (dd, 1H, J = 9.0, 9.0 Hz), 4.16 (ddd,
1H, J = 3.0, 6.0, 12.5), 3.97 (dddd, 1H, J = 5.4, 5.4, 10.8, 10.8 Hz), 3.60 (m, 1H),
3.37 (s, 3H), 3.18 (s, 3H), 2.52 (m, 1H), 2.13 (dddd, 1H, J = 3.0, 3.0, 6.0, 13.8
Hz), 1.99 (m, 1H), 1.88 (m, 1H), 1.40 (s, 9H); 13C-NMR (CDCl3, 100 MHz) δ 187.3, 151.9, 148.3, 142.4, 125.3, 119.7, 83.8, 77.0 (CH-O, confirmed
by HMQC), 62.5, 56.5, 45.3, 43.7, 37.9, 34.7, 27.9, 22.0, 19.3; |
[0081] While the foregoing specification teaches the principles of the present invention,
with examples provided for the purpose of illustration, it will be understood that
the practice of the invention encompasses all of the usual variations, adaptations
and/or modifications as come within the scope of the following claims and their equivalents.
[0082] The compounds of the invention are useful as intermediates in the sythesis of biologically
important targets such as antimicrobial agents.
[0083] The compounds of the present invention may also be present in the form of pharmaceutically
acceptable salts. For use in medicine, the salts of the compounds of this invention
refer to non-toxic "pharmaceutically acceptable salts" (
Ref. International J. Pharm., 1986, 33,201-217;
J. Pharm.Sci., 1997 (Jan), 66, 1, 1). Other salts may, however, be useful in the preparation of compounds according to
this invention or of their pharmaceutically acceptable salts. Representative organic
or inorganic acids include, but are not limited to, hydrochloric, hydrobromic, hydriodic,
perchloric, sulfuric, nitric, phosphoric, acetic, propionic, glycolic, lactic, succinic,
maleic, fumaric, malic, tartaric, citric, benzoic, mandelic, methanesulfonic, hydroxyethanesulfonic,
benezenesulfonic, oxalic, pamoic, 2-naphthalenesulfonic, p-toluenesulfonic, cyclohexanesulfamic,
salicylic, saccharinic or trifluoroacetic acid. Representative organic or inorganic
bases include, but are not limited to, basic or cationic salts such as benzathine,
chloroprocaine, choline, diethanolamine, ethylenediamine, meglumine, procaine, aluminum,
calcium, lithium, magnesium, potassium, sodium and zinc.
[0084] The present invention includes within its scope prodrugs of the compounds of this
invention. In general, such prodrugs will be functional derivatives of the compounds
which are readily convertible
in vivo into the required compound. Thus, in the methods of treatment of the present invention,
the term "administering" shall encompass the treatment of the various disorders described
with the compound specifically disclosed or with a compound which may not be specifically
disclosed, but which converts to the specified compound
in vivo after administration to the subject. Conventional procedures for the selection and
preparation of suitable prodrug derivatives are described, for example, in "
Design of Prodrugs", ed. H. Bundgaard, Elsevier, 1985.
[0085] The compounds according to this invention possess two or more chiral centers, they
exist as enantiomers and diastereomers. It is to be understood that all such isomers
and mixtures thereof are encompassed within the scope of the present invention. Furthermore,
some of the crystalline forms for the compounds may exist as polymorphs and as such
are intended to be included in the present invention. In addition, some of the compounds
may form solvates with water (i.e., hydrates) or common organic solvents, and such
solvates are also intended to be encompassed within the scope of this invention.
[0086] Where the processes for the preparation of the compounds according to the invention
give rise to mixture of stereoisomers, these isomers may be separated by conventional
techniques such as preparative chromatography. The compounds may be prepared in racemic
form, or individual enantiomers may be prepared either by enantiospecific synthesis
or by resolution. The compounds may, for example, be resolved into their component
enantiomers by standard techniques, such as the formation of diastereomeric pairs
by salt formation with an optically active acid, such as (-)-di-p-toluoyl-d-tartaric
acid and/or (+)-di-p-toluoyl-l-tartaric acid followed by fractional crystallization
and regeneration of the free base. The compounds may also be resolved by formation
of diastereomeric esters or amides, followed by chromatographic separation and removal
of the chiral auxiliary. Alternatively, the compounds may be resolved using a chiral
HPLC column.
[0087] The processes for the preparation of the compounds according to the invention may
give rise to products with tautomeric structural forms; wherein, the structures differ
in the point of attachment of a hydrogen atom and exist in an equilibrium favoring
the weaker acid. Such products include both keto-enol tautomers and imine-enamine
tautomers and are intended to be encompassed within the scope of this invention. Keto-enol
tautomers refer to those compound structures wherein a hydroxy atom bonded to an alkenyl
carbon (the stronger acid "enol" structure) exists in equilibrium with an oxygen atom
bonded by a double-bond to an alkanyl carbon (the weaker acid "keto" structure). Imine-enamine
tautomers refer to those compound structures wherein a hydrogen substituted nitrogen
atom bonded to an alkenyl carbon (the stronger acid "enamine" structure) exists in
equilibrium with a nitrogen atom bonded via a double-bond to an alkanyl carbon (the
weaker acid "imine" structure).
[0089] Even though the compounds of the present invention (including their pharmaceutically,
acceptable salts and pharmaceutically acceptable solvates) can be administered alone,
they will generally be administered in admixture with a pharmaceutical carrier, excipient
or diluent selected with regard to the intended route of administration and standard
pharmaceutical or veterinary practice. Thus, the present invention is directed to
pharmaceutical and veterinary compositions comprising compounds of Formula (I) or
of Formula (II) and one or more pharmaceutically acceptable carriers, excipients or
diluents.
[0090] By way of example, in the pharmaceutical and veterinary compositions of the present
invention, the compounds of the present invention may be admixed with any suitable
binder(s), lubricant(s), suspending agent(s), coating agent(s), and/or solubilising
agent(s).
[0091] Tablets or capsules of the compounds may be administered singly or two or more at
a time, as appropriate. It is also possible to administer the compounds in sustained
release formulations.
[0092] Alternatively, the compounds of the general Formula (I) or Formula (II) can be administered
by inhalation or in the form of a suppository or pessary, or they may be applied topically
in the form of a lotion, solution, cream, ointment or dusting powder. An alternative
means of transdermal administration is by use of a skin patch. For example, they can
be incorporated into a cream consisting of an aqueous emulsion of polyethylene glycols
or liquid paraffin. They can also be incorporated, at a concentration of between 1
and 10% by weight, into an ointment consisting of a white wax or white soft paraffin
base together with such stabilisers and preservatives as may be required.
[0093] For some applications, preferably the compositions are administered orally in the
form of tablets containing excipients such as starch or lactose, or in capsules or
ovules either alone or in admixture with excipients, or in the form of elixirs, solutions
or suspensions containing flavouring or coloring agents.
[0094] The compositions (as well as the compounds alone) can also be injected parenterally,
for example intracavernosally, intravenously, intramuscularly or subcutaneously. In
this case, the compositions will comprise a suitable carrier or diluent.
[0095] For parenteral administration, the compositions are best used in the form of a sterile
aqueous solution which may contain other substances, for example enough salts or monosaccharides
to make the solution isotonic with blood.
[0096] For buccal or sublingual administration the compositions may be administered in the
form of tablets or lozenges which can be formulated in a conventional manner.
[0097] By way of further example, pharmaceutical and veterinary compositions containing
one or more of the compounds of the invention described herein as the active ingredient
can be prepared by intimately mixing the compound or compounds with a pharmaceutical
carrier according to conventional pharmaceutical compounding techniques. The carrier
may take a wide variety of forms depending upon the desired route of administration
(e.g., oral, parenteral). Thus for liquid oral preparations such as suspensions, elixirs
and solutions, suitable carriers and additives include water, glycols, oils, alcohols,
flavoring agents, preservatives, stabilizers, coloring agents and the like; for solid
oral preparations, such as powders, capsules and tablets, suitable carriers and additives
include starches, sugars, diluents, granulating agents, lubricants, binders, disintegrating
agents and the like. Solid oral preparations may also be coated with substances such
as sugars or be enteric-coated so as to modulate the major site of absorption. For
parenteral administration, the carrier will usually consist of sterile water and other
ingredients may be added to increase solubility or preservation. Injectable suspensions
or solutions may also be prepared utilizing aqueous carriers along with appropriate
additives.
[0098] Advantageously, compounds of the present invention may be administered in a single
daily dose, or the total daily dosage may be administered in divided doses of two,
three or four times daily. Furthermore, compounds for the present invention can be
administered in intranasal form via topical use of suitable intranasal vehicles, or
via transdermal skin patches well known to those skilled in that art. To be administered
in the form of a transdermal delivery system, the dosage administration will, of course,
be continuous rather than intermittent throughout the dosage regimen.
[0099] For oral administration, a pharmaceutical composition is preferably provided in the
form of tablets containing, 0.01, 0.05, 0.1, 0.5, 1.0, 2.5, 5.0, 10.0, 15.0, 25.0,
50.0, 100, 150, 200, 250 and 500 milligrams of the active ingredient for the symptomatic
adjustment of the dosage to the subject to be treated.
[0100] It is also apparent to one skilled in the art that the therapeutically effective
dose for active compounds of the invention or a pharmaceutical composition thereof
will vary according to the desired effect. Therefore, optimal dosages to be administered
may be readily determined and will vary with the particular compound used, the mode
of administration, the strength of the preparation, and the advancement of the disease
condition. In addition, factors associated with the particular subject being treated,
including subject age, weight, diet and time of administration, will result in the
need to adjust the dose to an appropriate therapeutic level. The above dosages are
thus exemplary of the average case. There can, of course, be individual instances
where higher or lower dosage ranges are merited, and such are within the scope of
this invention.
[0101] Compounds of this invention may be administered in any of the foregoing compositions
and dosage regimens or by means of those compositions and dosage regimens established
in the art whenever use of the compounds of the invention as vanilloid receptor modulators
is required for a subject in need thereof.
[0102] The invention also provides a pharmaceutical or veterinary pack or kit comprising
one or more containers filled with one or more of the ingredients of the pharmaceutical
and veterinary compositions of the invention. Optionally associated with such container(s)
can be a notice in the form prescribed by a governmental agency regulating the manufacture,
use or sale of pharmaceuticals or biological products, which notice reflects approval
by the agency of manufacture, use or sale for human administration.
1. A method of synthesizing 2-substituted azole compunds of formula (I):

the method comprising
(a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)


to give an oxazolidone of formula (Ia)

(b) reacting the the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, cleave the O-(C=Q) bond, and open the oxazolidone, then reacting the resulting
intermediate with Prot-Z wherein Prot-Z is an amino protecting agent selected from
the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ib)

and
(c) oxidizing the intermediate of formula (Ib) to give the 2-substituted azole derivative
of formula (I);
wherein
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy;
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S;
L is Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX or OCO
2R
IX;
R
IX is fluorinated C
1-8alkyl, C
1-8alkyl C
5-10aryl, C
5-10arylC
1-8alkanyl, or C
5-10heteroaryl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
2. A method of synthesizing 2-substituted azole compunds of formula (I):

the method comprising
(a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

wherein Q = S and RVI is -NRVIIRVIII, to give an oxazolidone of formula (Ia)

(b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2COCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ic)

and
(c) reacting the intermediate of formula (Ic), so as to hydrolyze the O-(C=Q) bond
and oxazolidone then oxidize the intermediate to give the 2-substituted azole of formula
(I);
wherein
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy;
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IIand R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
L is Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX or OCO
2R
IX;
R
IX is fluorinated C
1-8alkyl, C
1-8alkyl C
5-10aryl, C
5-10arylC
1-8alkanyl, or C
5-10heteroaryl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
3. A method of synthesizing 2-substituted azole compunds of formula (I):

the method comprising
(a) reacting an aldehyde of formula (II)

with an azole of formula (III)

in the presence of a carbonylating agent of formula (IV)

to give an oxazolidone of formula (Ia)

(b) reacting the oxazolidone of formula (Ia) so as to hydrolyze the triarylmethyl
group, then reacting the resulting intermediate with Prot-Z wherein Prot-Z is an amino
protecting agent selected from the group consisting of Prot-O-Prot, Prot-halide, Prot-N3, RXO2COCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2CO-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu, or Fmoc-O-C6F5, to give an azole-containing intermediate of formula (Ic)

(c) reacting the intermediate of formula (Ic) so as to hydrolyze the O-(C=Q) bond,
then reacting the intermediate with RII-L to give an intermediate of formula (Id);

and
(d) reacting the intermediate of formula (Id) so as to hydrolyze the oxazolidone group,
then oxidizing the intermediate to give the 2-substituted azole of formula (I);
wherein
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy;
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S;
L is Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX or OCO
2R
IX;
R
IX is fluorinated C
1-8alkyl, C
1-8alkyl C
5-10aryl, C
5-10arylC
1-8alkanyl, or C
5-10heteroaryl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
4. The method of any of claims 1 to 3 wherein Prot is Boc, Fmoc, Alloc, Cbz, Ts, or Mtr.
5. The method of any of claims 1 to 3 wherein Prot is Boc or Fmoc:
6. The method of any of claims 1 to 3 wherein Prot is Boc.
7. The method of any of claims 1 to 3 wherein Ar1, Ar2, and Ar3 are phenyl.
8. The method of any of claims 1 to 3 wherein X is N.
9. The method of any of claims 1 to 3 wherein A is C.
10. The method of any of claims 1 to 3 wherein Y is C.
11. The method of any of claims 1 to 3 wherein X is N, A is C, and Y is C.
12. The method of any of claims 1 to 3 wherein Q is S.
13. The method of any of claims 1 to 3 wherein E is a direct bond and RV is absent.
14. The method of any of claims 1 to 3 wherein R is H.
15. The method of any of claims 1 to 3 wherein RI is H.
16. The method of any of claims 1 to 3 wherein R and RI taken together are -(CH=CH)2-.
17. The method of any of claims 1 to 3 wherein RIV is C1-8alkyl C5-10arylC1-8alkanyl or C5-10arylC1-8heteroalkyl.
18. The method of any of claims 1 to 3 wherein RIV is methyl, Benzyl or -CH2OCH2C6H5.
19. The method of any of claims 1 to 3 wherein RV is absent, or H.
20. The method of any of claims 1 to 3 wherein RIV and RV together with E form a five to eight membered cyclic alkyl or cyclic heteroalkyl.
21. The method of any of claims 1 to 3 wherein RIV and RV together with E form a 6 membered cyclic alkanyl.
22. The method of any of claims 1 to 3 wherein RVI is NMe2.
23. The method of any of claims 1 to 3 wherein RVII is C1-8alkyl.
24. The method of any of claims 1 to 3 wherein RVIII is C1-8alkyl.
25. The method of any of claims 1 to 3 wherein RVII and RVIII taken taken together form a three to seven membered cyclic alkanyl or cyclic heteroalkanyl.
26. The method of any of claims 1 to 3 wherein L is Cl, Br, OSO2RIX, or O(CO)RIX.
27. The method of 26 claim wherein L is OSO2RIX, or O(CO)RIX and RIX is fluorinated C1-8alkyl.
28. The method of any of claims 1 to 3 wherein L is Cl.
29. A 2-substituted azole compound of formula (I):

wherein
X is N or S;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryt-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
Y and A independently are C or N;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II and R
III independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
30. A compound of of formula (Ia)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrite, -NR
VIIRV
III, -OR
VII, -CORV
III -COOR
VIII -CONRV
IIRV
III or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and R
VII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Q is O or S; and
Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy.
31. A compound of formula (Ib)

wherein
X is N ;
Y and A independently are C or N;
E is a direct bond or CH;
R and R' Independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IIis H, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
32. A compound of formula (Ic)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NR
VIIR
VII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R
I is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-8heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10aryC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryi-coniaining R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VI is C
1-8alkanyloxy or -NR
VIIR
VIII;
R
VII and RV
III independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
33. A compound of formula (Id)

wherein
X is N or S;
Y and A independently are C or N;
E is a direct bond or CH;
R and R
I independently are H, C
1-8heteroalkyl, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
1-8fluorinated alkyl, heteroarylC
1-8alkanyl, halogen, nitrile, -NRV
IIRV
III, -OR V
II, -COR
VII -COORV
II -CONR
VIIR
VIII or taken together form a five to eight membered carbocyclic or heterocyclic saturated
or unsaturated ring, wherein the heteroaryl in any heteroaryl-containing R or R' is
independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
II is H, C
1-8alkyl, C
5-10arylC
1-8alkanyl or C
1-8heteroalkyl;
R
IV is H, C
1-8alkyl, C
5-10aryl, heteroaryl, C
5-10arylC
1-8alkanyl, C
5-10arylC
1-8heteroalkyl, C
1-3heteroalkyl, or taken together with R
V forms a five to eight membered cyclic alkanyl or cyclic heteroalkanyl, wherein the
heteroaryl in any heteroaryl-containing R
IV is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
V is absent when E is a direct bond, H, C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl, heteroaryl, or taken together with E and R
IV forms a five to eight membered cyclic alkyl or cyclic heteroalkyl, wherein the heteroaryl
in any heteroaryl-containing R
V is independently selected from the group consisting of chromenyl, cinnolinyl, furanyl,
imidazolyl, indazolyl, indolyl, indolizinyl, isobenzofuranyl, isochromenyl, isoindolyl,
isoquinolinyl, isothiazolyl, isoxazolyl, naphthyridinyl, oxadiazolyl, oxazolyl, perimidinyl,
phthalazinyl, pteridinyl, purinyl, pyranyl, pyrazinyl, pyrazolyl, pyridazinyl, pyridinyl,
pyrimidinyl, pyrrolyl, pyrrolizinyl, quinazolinyl, quinolinyl, quinolizinyl, quinoxalinyl,
tetrazolyl, thiadiazolyl, thiazolyl, thiophenyl, triazinyl, and triazolyl;
R
VII and R
VIII independently are C
1-8alkyl, C
5-10aryl, C
5-10arylC
1-8alkanyl or taken taken together form a three to seven membered cyclic alkanyl or cyclic
heteroalkanyl;
Prot is an amino protecting group selected from the group consisting of -CO
2R
X, -COR
X, and -SO
2R
X; and
R
X is C
1-8alkyl, C
1-5alkanyl substituted with 1-11 chlorine atoms, C
5-10aryl, C
5-10arylC
1-8alkanyl, C
3-8heteroalkanyl, C
5-10heteroaryl, or Fmoc.
34. A compound of formula (II)

wherein Ar
1, Ar
2 and Ar
3 independently are phenyl or phenyl optionally substituted with halogen, C
1-8alkyl, C
1-8alkyloxy, nitro, C
1-8alkylamino, nitrile, or benzoyloxy.
35. The compound of any of claims 29 to 33 wherein Prot is Boc, Fmoc, Alloc, Cbz, Ts,
or Mtr.
36. The compound of any of claims 29 and 31 to 33 wherein Prot is Boc or Cbz.
37. The compound of any of claims 29 and 31 to 33 wherein Prot is Boc.
38. The compound of any of claims 30 and 34 wherein Ar1, Ar2, and Ar3 are phenyl.
39. The compound of any of claims 29 to 33 wherein X is N.
40. The compound of any of claims 29 to 33 wherein A is C.
41. The compound of any of claims 29 to 33 wherein Y is C.
42. The compound of any of claims 29 to 33 wherein X is N, A is C, and Y is C.
43. The compound of any of claims 30 or 32 wherein Q is S.
44. The compound of any of claims 29 to 33 wherein E is a direct bond and RV is absent.
45. The compound of any of claims 29 to 33 wherein R is H.
46. The compound of any of claims 29 to 33 wherein RI is H.
47. The compound of any of claims 29 to 33 wherein R and RI taken together are -(CH=CH)2-.
48. The compound of any of claims 29 to 33 wherein RIV is C1-8alkyl C5-10arylC1-8alkanyl or C5-10arylC1-8heteroalkyl.
49. The compound of any of claims 29 to 33 wherein RIV is methyl, Benzyl or -CH2OCH2C6H5.
50. The compound of any of claims 29 to 33 wherein RV is absent, or H.
51. The compound of any of claims 29 to 33 wherein RIV and RV together with E form a five to eight membered cyclic alkyl or cyclic heteroalkyl.
52. The compound of any of claims 29 to 33 wherein RIV and RV together with E form a 6 membered cyclic alkanyl.
53. The compound of any of claims 30 or 32 wherein RVI is NMe2.
54. The compound of any of claims 29 to 33 wherein RVII is C1-8alkyl.
55. The compound of any of claims 29 to 33 wherein RVIII is C1-8alkyl.
56. The compound of any of claims 29 to 33 wherein RVII and RVIII taken taken together form a three to seven membered cyclic alkanyl or cyclic heteroalkanyl.
1. Verfahren zum Synthetisieren von 2-substituierten Azolverbindungen von Formel (I):

wobei das Verfahren umfasst
(a) Umsetzen eines Aldehyds von Formel (II)

mit einem Azol von Formel (III)

in Gegenwart eines Carbonylierungsmittels von Formel (IV)

um ein Oxazolidon von Formel (Ia) zu ergeben

(b) Umsetzen des Oxazolidons von Formel (Ia), so dass die Triarylmethylgruppe hydrolysiert
wird, die O-(C=Q)-Bindung gespalten wird und das Oxazolidon geöffnet wird, anschließend
Umsetzen des resultierenden Zwischenproduktes mit Prot-Z, wobei Prot-Z eine Amino-Schutzverbindung
ist, die ausgewählt ist aus der Gruppe, bestehend aus Prot-O-Prot, Prot-Halogenid,
Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu oder Fmoc-O-C6F5, um ein Azol enthaltendes Zwischenprodukt von Formel (Ib) zu ergeben

und
(c) Oxidieren des Zwischenproduktes von Formel (Ib), um das 2-substituierte Azol-Derivat
von Formel (I) zu ergeben;
wobei
Ar
1, Ar
2 und Ar
3 unabhängig Phenyl oder Phenyl, das gegebenenfalls mit Halogen, C
1-8-Alkyl, C
1-8-Alkyloxy, Nitro, C
1-8-Alkylamino, Nitril oder Benzoyloxy substituiert ist, sind;
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NRV
IIR
VIII, -OR
VII, -COR
VII, -COORV
II, -CONR
VIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
II und R
III unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl-C
1-8alkanyl oder C
1-8-Heteroalkyl sind;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VI C
1-8-Alkanyloxy oder -NR
IIR
VII ist;
R
VII und R
VIII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Q O oder S ist;
L Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX oder OCO
2R
IX ist;
R
IX fluoriertes C
1-8-Alkyl, C
1-8-Alkyl-C
5-10-aryl, C
5-10-Aryl-C
1-8-alkanyl oder C
5-10-Heteroaryl ist;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
2. Verfahren zum Synthetisieren von 2-substituierten Azolverbindungen von Formel (I):

wobei das Verfahren umfasst
(a) Umsetzen eines Aldehyds von Formel (II)

mit einem Azol von Formel (III)

in Gegenwart eines Carbonylierungsmittels von Formel (IV)

wobei Q=S und RVI -NRVIIRVIII ist, um ein Oxazolidon von Formel (Ia) zu ergeben

(b) Umsetzen des Oxazolidons von Formel (Ia), so dass die Triarylmethylgruppe hydrolysiert
wird, anschließend Umsetzen des resultierenden Zwischenproduktes mit Prot-Z, wobei
Prot-Z eine Amino-Schutzverbindung ist, die ausgewählt ist aus der Gruppe, bestehend
aus Prot-O-Prot, Prot-Halogenid, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu oder Fmoc-O-C6F5, um ein Azol enthaltendes Zwischenprodukt von Formel (Ic) zu ergeben

und
(c) Umsetzen des Zwischenproduktes von Formel (Ic), so dass die O-(C=Q)-Bindung und
Oxazolidon hydrolysiert wird, anschließend das Zwischenprodukt oxidiert wird, um das
2-substituierte Azol von Formel (I) zu ergeben;
wobei
Ar
1, Ar
2 und Ar
3 unabhängig Phenyl oder Phenyl, das gegebenenfalls mit Halogen, C
1-8-Alkyl, C
1-8-Alkyloxy, Nitro, C
1-8-Alkylamino, Nitril oder Benzoyloxy substituiert ist, sind;
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII, -OR
VII, -COR
VII, -COORV
II, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
II und R
III unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl-C
1-8-alkanyl oder C
1-8-Heteroalkyl sind;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VII und R
VIII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
L Cl, Br, I, F, OSO
2R
IX, O(CO)R
X oder OCO2R
IX ist;
R
IX fluoriertes C
1-8-Alkyl, C
1-8-Alkyl-C
5-10-aryl, C
5-10-Aryl-C
1-8-alkanyl oder C
5-10-Heteroaryl ist;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
3. Verfahren zum Synthetisieren von 2-substituierten Azolverbindungen von Formel (I):

wobei das Verfahren umfasst
(a) Umsetzen eines Aldehyds von Formel (II)

mit einem Azol von Formel (III)

in Gegenwart eines Carbonylierungsmittels von Formel (IV)

um ein Oxazolidon von Formel (Ia) zu ergeben

(b) Umsetzen des Oxazolidons von Formel (Ia), so dass die Triarylmethylgruppe hydrolysiert
wird, anschließend Umsetzen des resultierenden Zwischenproduktes mit Prot-Z, wobei
Prot-Z eine Amino-Schutzverbindung ist, die ausgewählt ist aus der Gruppe, bestehend
aus Prot-O-Prot, Prot-Halogenid, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyl), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyl, RXO2C-S-2-pyridyl, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyl), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyl), Fmoc-OSu oder Fmoc-O-C6F5, um ein Azol enthaltendes Zwischenprodukt von Formel (Ic) zu ergeben

(c) Umsetzen des Zwischenproduktes von Formel (Ic), so dass die O-(C=Q)-Bindung hydrolysiert
wird, anschließend Umsetzen des Zwischenproduktes mit RII-L, um ein Zwischenprodukt von Formel (Id) zu ergeben

und
(d) Umsetzen des Zwischenproduktes von Formel (Id), so dass die Oxazolidongruppe hydrolysiert
wird, anschließend Oxidieren des Zwischenproduktes, um das 2-substituierte Azol von
Formel (I) zu ergeben;
wobei
Ar
1, Ar
2 und Ar
3 unabhängig Phenyl oder Phenyl, das gegebenenfalls mit Halogen, C
1-8-Alkyl, C
1-8-Alkyloxy, Nitro, C
1-8-Alkylamino, Nitril oder Benzoyloxy substituiert ist, sind;
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII, -OR
VII, -COR
VII, -COOR
VII, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
RII und R
III unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl-C
1-8-alkanyl oder C
1-8-Heteroalkyl sind;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VI C
1-8-Alkanyloxy oder -NR
VIIR
VIII ist;
R
VII und R
VIII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Q O oder S ist;
L Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX oder OCO
2R
IX ist;
R
IX fluoriertes C
1-8-Alkyl, C
1-8-Alkyl-C
5-10-aryl, C
5-10-Aryl-C
1-8-alkanyl oder C
5-10-Heteroaryl ist;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
4. Verfahren nach einem der Ansprüche 1 bis 3, wobei Prot Boc, Fmoc, Alloc, Cbz, Ts oder
Mtr ist.
5. Verfahren nach einem der Ansprüche 1 bis 3, wobei Prot Boc oder Fmoc ist.
6. Verfahren nach einem der Ansprüche 1 bis 3, wobei Prot Boc ist.
7. Verfahren nach einem der Ansprüche 1 bis 3, wobei Ar1, Ar2 und Ar3 Phenyl sind.
8. Verfahren nach einem der Ansprüche 1 bis 3, wobei X N ist.
9. Verfahren nach einem der Ansprüche 1 bis 3, wobei A C ist.
10. Verfahren nach einem der Ansprüche 1 bis 3, wobei Y C ist.
11. Verfahren nach einem der Ansprüche 1 bis 3, wobei X N ist, A C ist und Y C ist.
12. Verfahren nach einem der Ansprüche 1 bis 3, wobei Q S ist.
13. Verfahren nach einem der Ansprüche 1 bis 3, wobei E eine direkte Bindung ist und RV nicht vorhanden ist.
14. Verfahren nach einem der Ansprüche 1 bis 3, wobei R H ist.
15. Verfahren nach einem der Ansprüche 1 bis 3, wobei RI H ist.
16. Verfahren nach einem der Ansprüche 1 bis 3, wobei R und RI zusammengenommen -(CH=CH)2- sind.
17. Verfahren nach einem der Ansprüche 1, bis 3, wobei RIV C1-8-Alkyl, C5-10-Alkyl-C1-8-alkanyl oder C5-10-Aryl-C1-8-heteroalkyl ist.
18. Verfahren nach einem der Ansprüche 1 bis 3, wobei RIV Methyl, Benzyl oder -CH2OCH2C6H5 ist.
19. Verfahren nach einem der Ansprüche 1 bis 3, wobei RV nicht vorhanden oder H ist.
20. Verfahren nach einem der Ansprüche 1 bis 3, wobei RIV und RV zusammen mit E ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bilden.
21. Verfahren nach einem der Ansprüche 1 bis 3, wobei RIV und RV zusammen mit E ein 6-gliedriges cyclisches Alkanyl bilden.
22. Verfahren nach einem der Ansprüche 1 bis 3, wobei RVI NMe2 ist.
23. Verfahren nach einem der Ansprüche 1 bis 3, wobei RVII C1-8-Alkyl ist.
24. Verfahren nach einem der Ansprüche 1 bis 3, wobei RVIII C1-8-Alkyl ist.
25. Verfahren nach einem der Ansprüche 1 bis 3, wobei RVII und RVIII zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bilden.
26. Verfahren nach einem der Ansprüche 1 bis 3, wobei L Cl, Br, OSO2RIX oder O(CO)RIX ist.
27. Verfahren nach Anspruch 26, wobei L OSO2RIXoder O(CO)RIX ist und RIX fluoriertes C1-8-Alkyl ist.
28. Verfahren nach einem der Ansprüche 1 bis 3, wobei L Cl ist.
29. 2-substituierte Azolverbindung von Formel (I):

wobei
X N oder S ist;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
Y und A unabhängig C oder N sind;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII, -OR
VII, -COR
VII, -COORV
II, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
II und R
III unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl-C
1-8-alkanyl oder C
1-8-Heteroalkyl sind;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
30. Verbindung von Formel (Ia)

wobei
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII , -ORV
II, -CORV
II, -COOR
VII, -CONR
VIIRV
III sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem eteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VI C
1-8-Alkanyloxy oder -NR
VIIR
VIII ist;
R
VII und R
VIII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Q O oder S ist; und
Ar
1, Ar
2 und Ar
3 unabhängig Phenyl oder Phenyl, das gegebenenfalls mit Halogen, C
1-8-Alkyl, C
1-8-Alkyloxy, Nitro, C
1-8-Alkylamino, Nitril oder Benzoyloxy substituiert ist, sind.
31. Verbindung von Formel (Ib)

wobei
X N ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII , -OR
VII , -COR
VII,-COOR
VII, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
II H, C
1-8-Alkyl, C
5-10-Aryl-C
1-8-alkanyl oder C
1-8-Heteroalkyl ist;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
RV
II und R
VIII unabhängig C1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
32. Verbindung von Formel (Ic)

wobei
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII, -OR
VII, -COR
VII, -COOR
VII, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
1-8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VI C
1-8-Alkanyloxy oder -NR
VIIR
VIII ist;
R
VII und R
VII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
33. Verbindung von Formel (Id)

wobei
X N oder S ist;
Y und A unabhängig C oder N sind;
E eine direkte Bindung oder CH ist;
R und R
I unabhängig H, C
1-8-Heteroalkyl, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, fluoriertes C
1-8-Alkyl, Heteroaryl-C
1-8-alkanyl, Halogen, Nitril, -NR
VIIR
VIII, -OR
VII, -CORII, -COOR
VII, -CONR
VIIR
VIII sind oder zusammengenommen einen fünf- bis achtgliedrigen carbocyclischen oder heterocyclischen
gesättigten oder ungesättigten Ring bilden, wobei das Heteroaryl in jedem Heteroaryl
enthaltenden R oder R
I unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
II H, C
1-8-Alkyl, C
5-10-Aryl-C
1-8-alkanyl oder C
1-8-Heteroalkyl ist;
R
IV H, C
1-8-Alkyl, C
5-10-Aryl, Heteroaryl, C
5-10-Aryl-C
1-8-alkanyl, C
5-10-Aryl-C
1-8-heteroalkyl, C
I-
8-Heteroalkyl ist oder mit R
V zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
IV unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
V nicht vorhanden, wenn E eine direkte Bindung ist, H, C
1-8-Alkyl, C
5-10-Aryl, C
510-to-Aryl-C
1-8-alkanyl, Heteroaryl ist oder mit E und R
IV zusammengenommen ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bildet, wobei das Heteroaryl in jedem Heteroaryl enthaltenden R
V unabhängig ausgewählt ist aus der Gruppe, bestehend aus Chromenyl, Cinnolinyl, Furanyl,
Imidazolyl, Indazolyl, Indolyl, Indolizinyl, Isobenzofuranyl, Isochromenyl, Isoindolyl,
Isochinolinyl, Isothiazolyl, Isoxazolyl, Naphthyridinyl, Oxadiazolyl, Oxazolyl, Perimidinyl,
Phthalazinyl, Pteridinyl, Purinyl, Pyranyl, Pyrazinyl, Pyrazolyl, Pyridazinyl, Pyridinyl,
Pyrimidinyl, Pyrrolyl, Pyrrolizinyl, Chinazolinyl, Chinolinyl, Chinolizinyl, Chinoxalinyl,
Tetrazolyl, Thiadiazolyl, Thiazolyl, Thiophenyl, Triazinyl und Triazolyl;
R
VII und R
VIII unabhängig C
1-8-Alkyl, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl sind oder zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl
oder cyclisches Heteroalkanyl bilden;
Prot eine Amino-Schutzgruppe ist, die ausgewählt ist aus der Gruppe, bestehend aus
-CO
2R
X, -COR
X und -SO
2R
X; und
R
X C
1-8-Alkyl, C
1-5-Alkanyl, substituiert mit 1-11 Chloratomen, C
5-10-Aryl, C
5-10-Aryl-C
1-8-alkanyl, C
3-8-Heteroalkanyl, C
5-10-Heteroaryl oder Fmoc ist.
34. Verbindung von Formel (II)

wobei
Ar
1, Ar
2 und Ar
3 unabhängig Phenyl oder Phenyl, das gegebenenfalls mit Halogen, C
1-8-Alkyl, C
1-8-Alkyloxy, Nitro, C
1-8-Alkylamino, Nitril oder Benzoyloxy substituiert ist, sind.
35. Verbindung nach einem der Ansprüche 29 bis 33, wobei Prot Boc, Fmoc, Alloc, Cbz, Ts
oder Mtr ist.
36. Verbindung nach einem der Ansprüche 29 und 31 bis 33, wobei Prot Boc oder Cbz ist.
37. Verbindung nach einem der Ansprüche 29 und 31 bis 33, wobei Prot Boc ist.
38. Verbindung nach einem der Ansprüche 30 bis 34, wobei Ar1, Ar2 und Ar3 Phenyl sind.
39. Verbindung nach einem der Ansprüche 29 bis 33, wobei X N ist.
40. Verbindung nach einem der Ansprüche 29 bis 33, wobei A C ist.
41. Verbindung nach einem der Ansprüche 29 bis 33, wobei Y C ist.
42. Verbindung nach einem der Ansprüche 29 bis 33, wobei X N ist, A C ist und Y C ist.
43. Verbindung nach einem der Ansprüche 30 oder 32, wobei Q S ist.
44. Verbindung nach einem der Ansprüche 29 bis 33, wobei E eine direkte Bindung ist und
RV nicht vorhanden ist.
45. Verbindung nach einem der Ansprüche 29 bis 33, wobei R H ist.
46. Verbindung nach einem der Ansprüche 29 bis 33, wobei RI H ist.
47. Verbindung nach einem der Ansprüche 29 bis 33, wobei R und RI zusammengenommen -(CH=CH)2- sind.
48. Verbindung nach einem der Ansprüche 29 bis 33, wobei RIV C1-8-Alkyl, C5-10-Aryl-C1-8-alkanyl oder C5-10-Aryl-C1-8-heteroalkyl ist.
49. Verbindung nach einem der Ansprüche 29 bis 33, wobei RIV Methyl, Benzyl oder -CH2OCH2C6H5 ist.
50. Verbindung nach einem der Ansprüche 29 bis 33, wobei RV nicht vorhanden oder H ist.
51. Verbindung nach einem der Ansprüche 29 bis 33, wobei RIV und RV zusammen mit E ein fünf- bis achtgliedriges cyclisches Alkyl oder cyclisches Heteroalkyl
bilden.
52. Verbindung nach einem der Ansprüche 29 bis 33, wobei RIV und RV zusammen mit E ein 6-gliedriges cyclisches Alkanyl bilden.
53. Verbindung nach einem der Ansprüche 30 oder 32, wobei RVI NMe2 ist.
54. Verbindung nach einem der Ansprüche 29 bis 33, wobei RVII C1-8-Alkyl ist.
55. Verbindung nach einem der Ansprüche 29 bis 33, wobei RVIII C1-8-Alkyl ist.
56. Verbindung nach einem der Ansprüche 29 bis 33, wobei RVII und RVIII zusammengenommen ein drei- bis siebengliedriges cyclisches Alkanyl oder cyclisches
Heteroalkanyl bilden.
1. Méthode de synthèse de composés d'azole 2-substitué de la formule (I) :

la méthode comprenant
(a) faire réagir un aldéhyde de la formule (II)

avec un azole de la formule (III)

en présence d'un agent carbonylant de la formule (IV)

pour fournir un oxazolidone de la formule (Ia)

(b) faire réagir l'oxazolidone de la formule (Ia) de manière à hydrolyser le groupe
triarylméthyle, cliver la liaison O-(C=Q), et ouvrir l'oxazolidone, faire réagir ensuite
l'intermédiaire obtenu avec Prot-Z, où Prot-Z est un agent de protection amino sélectionné
dans le groupe consistant en Prot-O-Prot, Prot-halogénure, Prot-N3, RxO2C-OCO2N=C (C6H5) CN, Prot-O-(1-benzotriazolyle), RxO2C-O-C6F5, RxO2C-O-C6H4-NO2, RxO2C-O-CH(Cl)CCl3, RxO2C-O-2-pyridyle, RxO2C-S-2-pyridyle, RxO2C-S-Ph, RxO2C-OSu; RxO2C- (1-imidazoyle), RxO2C-CN, RxCO-O-C6F5, RxCOCN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyle), Fmoc-OSu ou Fmoc-O=C6F5, pour donner un intermédiaire contenant de l'azole de la formule (Ib)

et
(c) oxyder l'intermédiaire de la formule (Ib) pour donner le dérivé d'azole 2-substitué
de la formule (I);
où
Ar
1, Ar
2 et Ar
3 sont indépendamment phényle ou phényle optionnellement substitué par halogène, alkyleC
1-8, alkyloxyC
1-8, nitro, alkylaminoC
1-8, nitrile ou benzoyloxy;
X est N ou S;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10alkanyleC
1-8, alkyleC
1-8 fluoré, hétéroaryle alkanyleC
1-8halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carboxylique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où l'hétéroaryle dans tout R ou R
I contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
II et R
III sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10alkanyleC
1-8 ou hétéroalkyle C
1-8;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10, alkanyle C
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyle C
1-8, ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membre, où l'hétéroaryle
dans tout R
IV contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou pris ensemble avec E et R
IV forme un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VI est alkanyloxyC
1-8 ou -NR
VIIR
VIII;
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Q est O ou S;
L est Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX ou OCO
2R
IX;
R
IX est alkyleC
1-8 fluoré, alkyleC
1-8aryleC
5-10, aryle C
5-10alkanyleC
1-8, ou hétéroaryleC
5-10;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en -CO
2R
X, -COR
X et -SO
2R
X; et
R
X est alkyleC
1-8, alkanyleC
1-5 substitué par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyleC
3-8, hétéroaryleC
5-10 ou Fmoc.
2. Méthode de synthèse de composés azole 2-substitué de la formule (I):

la méthode comprenant
(a) faire réagir un aldéhyde de la formule (II)

avec un azole de la formule (III)

en présence d'un agent carbonylant de la formule (IV)

où Q = S et RVI est -NRVIIRVIII, pour donner un oxazolidone de la formule (Ia)

(b) faire réagir l'oxazolidone de la formule (Ia) de manière à hydrolyser le groupe
triarylméthyle, ensuite faire réagir l'intermédiaire obtenu avec Prot-Z, où Prot-Z
est un agent de protection amino sélectionné dans le groupe consistant en Prot-O-Prot,
Prot-halogénure, Prot-N3, RXO2C-OCO2N=C(C6H5)CN, Prot-O-(1-benzotriazolyle), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridle, RXO2C-S-2-pyridyle, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyle), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyle), Fmoc-OSu, ou FmoC-O-C6F5, pour donner un intermédiaire contenant de l'azole de la formule (Ic)

et
(c) faire réagir l'intermédiaire de la formule (Ic), de manière à hydrolyser la liaison
O-(C=Q) et l'oxazolidone, ensuite oxyder l'intermédiaire pour donner l'azole 2-substitué
de la formule (I);
où
Ar
1, Ar
2 et Ar
3 sont indépendamment phényle ou phényle optionnellement substitué par halogène, alkyleC
1-8, alkyloxyC
1-8, nitro, alkylaminoC
1-8, nitrile ou benzoyloxy;
X est N ou S;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyle C
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10alkanyleC
1-8, alkyle C
1-8fluoré, hétéroaryle alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII-COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carboxylique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où l'hétéroaryle dans tout R ou R
I contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
II et R
III sont indépendamment H, hétéroalkyleC
1-8, alkyle C
1-8, aryleC
5-10alkanyleC
1-8 ou hétéroalkyleC
1-8;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10 alkanyleC
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyleC
1-8, ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout R
IV contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou pris ensemble avec E et R
IV forment un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant de l'hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
L est Cl, Br, I, F, OSO
2R
IX, O(CO)R
IX ou OCO
2R
IX;
R
IX est alkyleC
1-8 fluoroé, alkyleC
1-8 aryleC
5-10, aryle C
5-10alkanyleC
1-8, ou hétéroaryleC
5-10;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en -CO
2R
X, -COR
X et -SO
2R
X; et
R
X est alkyleC
1-8, alkanyleC
1-5 substitué par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyle C
3-8, hétéroaryleC
5-10 ou Fmoc.
3. Méthode de synthèse de composés d'azole 2-substitué de la formule (I):

la méthode comprenant
(a) faire réagir un aldéhyde de la formule (II)

avec un azole de la formule (III)

en présence d'un agent carbonylant de la formule (IV)

pour donner un oxazolidone de la formule (Ia)

(b) faire réagir l'oxazolidone de la formule (Ia) de manière à hydrolyser le groupe
triarylméthyle, faire réagir ensuite l'intermédiaire obtenu avec Prot-Z, où Prot-Z
est un agent de protection amino sélectionné dans le groupe consistant en Prot-O-Prot,
Prot-halogénure, Prot-N3, RXO2C-OCO2N=C(C6H5) CN, Prot-O- (1-benzotriazolyle), RXO2C-O-C6F5, RXO2C-O-C6H4-NO2, RXO2C-O-CH(Cl)CCl3, RXO2C-O-2-pyridyle, RXO2C-S-2-pyridyle, RXO2C-S-Ph, RXO2C-OSu, RXO2C-(1-imidazoyle), RXO2C-CN, RXCO-O-C6F5, RXCO-CN, Fmoc-Cl, Fmoc-N3, Fmoc-O-(1-benzotriazolyle), Fmoc-OSu ou Fmoc-O-C6F5, pour donner un intermédiaire contenant de l'azole de la formule (Ic)

(c) faire réagir l'intermédiaire de la formule (Ic) de manière à hydrolyser la liaison
O-(C=Q), ensuite faire réagir l'intermédiaire avec RII-L pour donner un intermédiaire de la formule (Id);

; et
(d) faire réagir l'intermédiaire de la formule (Id) de manière à hydrolyser le groupe
oxazolidone, ensuite oxyder l'intermédiaire pour donner l'azole 2-substitué de la
formule (I);
où
Ar
1 Ar
2 et Ar
3 sont indépendamment phényle ou phényle optionnellement substitué par halogène, alkyleC
1-8, alkyloxyC
1-8, nitro, alkylaminoC
1-8, nitrile ou benzoyloxy;
X est N ou S:
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et RI sont indépendamment H, hétéroalkyleC1-8, alkyleC1-8, aryleC5-10, hétéroaryle, aryleC5-10alkanyleC1-8, alkyleC1-8fluoré, hétéroaryle alkanyleC1-8, halogène, nitrile, - NRVIIRVIII, -ORVII, -CORVII -COORVII -CONRVIIRVIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où le hétéroaryle dans tout R ou RI contenant un hétéroaryle est indépendamment sélectionné dans le groupe consistant
en chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
RII et RIII sont indépendamment H, hétéroalkyleC1-8, alkyle C1-8, aryleC5-10alkanyleC1-8 ou hétéroalkyleC1-8;
RIV est H, alkyleC1-8, aryleC5-10, hétéroaryle, aryle C5-10alkanyleC1-8, aryleC5-10hétéroalkyleC1-8, hétéroalkyleC1-8, ou pris ensemble avec RV forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout RIV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
RV est absent lorsque E est une liaison directe, H, alkyleC1-8, aryleC5-10, aryleC5-10alkanyleC1-8, hétéroaryle, ou pris ensemble avec E et RIV forment un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout RV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
RVI est alkanyloxyC1-8 ou -NRVIIRVIII;
RVII et RVIII sont indépendamment alkyleC1-8, aryleC5-10, aryleC5-10alkanyleC1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Q est O ou S;
L est Cl, Br, I, F, OSO2RIX, O(CO) RIX ou OCO2RIX;
RIX est alkyleC1-8 fluoré, alkyleC1-8 aryleC5-10, aryle C5-10alkanyleC1-8 ou hétéroaryleC5-10;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en -CO2RX, -CORX et -SO2RX; et
RX est alkyleC1-8, alkanyleC1-5 substitué par 1-11 atomes de chlore, aryleC5-10, aryleC5-10alkanyleC1-8, hétéroalkanyleC3-8, hétéroaryleC5-10 ou Fmoc.
4. Méthode selon l'une quelconque des revendications 1 à 3, où Prot est Boc, Fmoc, Alloc,
Cbz, Ts ou Mtr.
5. Méthode selon l'une quelconque des revendications 1 à 3, où Prot est Boc ou Fmoc.
6. Méthode selon l'une quelconque des revendications 1 à 3, où Prot est Boc.
7. Méthode selon l'une quelconque des revendications 1 à 3, où Ar1, Ar2 et Ar3 sont phényle.
8. Méthode selon l'une quelconque des revendications 1 à 3, où X est N.
9. Méthode selon l'une quelconque des revendications 1 à 3, où A est C.
10. Méthode selon l'une quelconque des revendications 1 à 3, où Y est C.
11. Méthode selon l'une quelconque des revendications 1 à 3, où X est N, A est C et Y
est C.
12. Méthode selon l'une quelconque des revendications 1 à 3, où Q est S.
13. Méthode selon l'une quelconque des revendications 1 à 3, où E est une liaison directe
et RV est absent.
14. Méthode selon l'une quelconque des revendications 1 à 3, où R est H.
15. Méthode selon l'une quelconque des revendications 1 à 3, où RI est H.
16. Méthode selon l'une quelconque des revendications 1 à 3, où R et RI pris ensemble sont -(CH=CH)2-.
17. Méthode selon l'une quelconque des revendications 1 à 3, où RIV est alkyleC1-8aryleC5-10alkanyleC1-8 ou aryle C5-10hétéroalkyleC1-8.
18. Méthode selon l'une quelconque des revendications 1 à 3, où RIV est méthyle, benzyle ou -CH2OCH2C6H5.
19. Méthode selon l'une quelconque des revendications 1 à 3, où RV est absent, ou H.
20. Méthode selon l'une quelconque des revendications 1 à 3, où RIV et RV ensemble avec E forment un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit
membres.
21. Méthode selon l'une quelconque des revendications 1 à 3, où RIV et RV ensemble avec E forment un alkanyle cyclique à 6 membres.
22. Méthode selon l'une quelconque des revendications 1 à 3, où RVI est NMe2.
23. Méthode selon l'une quelconque des revendications 1 à 3, où RVII est alkyleC1-8.
24. Méthode selon l'une quelconque des revendications 1 à 3, où RVIII est alkyleC1-8.
25. Méthode selon l'une quelconque des revendications 1 à 3, où RVII et RVIII pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois à
sept membres.
26. Méthode selon l'une quelconque des revendications 1 à 3, où L est Cl, Br, OSO2RIX ou O(CO)RIX.
27. Méthode selon la revendication 26, où L est OSO2RIX ou O(CO)RIX et RIX est alkyleC1-8 fluoré.
28. Méthode selon l'une quelconque des revendications 1 à 3, où L est Cl.
29. Composé azole 2-substitué de la formule (I):

où
X est N ou S;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryle C
5-10alkanyleC
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyleC
1-8, ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de 5 à 8 membres, où l'hétéroaryle
dans tout R
IV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
Y et A sont indépendamment C ou N;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10 alkanyleC
1-8, alkyleC
1-8fluoré, hétéroaryl alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII, -COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de 5 à 8 membres, où l'hétéroaryle dans tout R ou R
I contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
II et R
III sont indépendamment H, hétéroalkyleC
1-8, alkyle C
1-8, aryleC
5-10alkanyleC
1-8 ou hétéroalkyleC
1-8;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en -CO
2R
X, -COR
X et -SO
2R
X; et
R
X est alkyleC
1-8, alkanyleC
1-5 substitué par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyleC
3-8, hétéroaryleC
5-10 ou Fmoc.
30. Composé de la formule (Ia)

où
X est N ou S;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10alkanyleC
1-8, alkyleC
1-8 fluoré, hétéroaryl alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII , -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où l'hétéroaryle dans tout R ou R
I contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryle C
5-10alkanyleC
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyleC
1-8, ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout R
IV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou ensemble avec E et R
IV forme un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VI est alkanyloxyC
1-8 ou -NR
VIIR
VIII;
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Q est O ou S; et
Ar
1, Ar
2 et Ar
3 sont indépendamment phényle ou phényle optionnellement substitué par halogène, alkyleC
1-8, alkyloxyC
1-8, nitro, alkylaminoC
1-8, nitrile ou benzoyloxy.
31. Composé de la formule (Ib)

où
X est N;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryle C
5-10alkanyleC
1-8, alkyleC
1-8fluoré, hétéroaryle, alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VIII -CONR
VIIR
VIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où l'hétéroaryle dans tout R ou R
I contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
II est H, alkyleC
1-8, aryleC
5-10alkanyleC
1-8 ou hétéroalkyleC
1-8;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryle C
5-10alkanyleC
1-8, aryleC
5-10héréroalkyleC
1-8, hétéroalkyleC
1-8, ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout R
IV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou bien ensemble avec E et R
IV forment un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en -CO
2R
X, -COR
X et -SO
2R
X; et
R
X est alkyleC
1-8, alkanyleC
1-5 substitué par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyleC
3-8, hétéroaryleC
5-10 ou Fmoc.
32. Composé de la formule (Ic)

où
X est N ou S;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10alkanyleC
1-8, alkyleC
1-8 fluoré, hétéroaryl alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de cinq à huit membres, où l'hétéroaryle dans tout R ou R
I contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10alkanyleC
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyleC
1-8 ou pris ensemble avec R
V forme un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout R
IV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou ensemble avec E et R
IV forme un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VI est alkanyloxyC
1-8 ou -NR
VIIR
VIII
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Prot est un groupe de protection amino sélectionné dans le groupe consistant en
-CO
2R
X, -COR
X et -SO
2R
X; et
R
X est alkyleC
1-8, alkanyleC
1-5 substitué par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyleC
3-8, hétéroaryleC
5-10 ou Fmoc.
33. Composé de la formule (Id)

où
X est N ou S;
Y et A sont indépendamment C ou N;
E est une liaison directe ou CH;
R et R
I sont indépendamment H, hétéroalkyleC
1-8, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryleC
5-10 alkanyleC
1-8, alkanyleC
1-8 fluoré, hétéroaryle alkanyleC
1-8, halogène, nitrile, -NR
VIIR
VIII, -OR
VII, -COR
VII -COOR
VII -CONR
VIIR
VIII ou pris ensemble forment un cycle carbocyclique ou hétérocyclique saturé ou insaturé
de 5 à 8 membres, où l'hétéroaryle dans tout R ou R
I contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
II est H, alkyleC
1-8, aryleC
5-10alkanyleC
1-8 ou hétéroalkyleC
1-8;
R
IV est H, alkyleC
1-8, aryleC
5-10, hétéroaryle, aryle C
5-10alkanyleC
1-8, aryleC
5-10hétéroalkyleC
1-8, hétéroalkyleC
1-8 ou pris ensemble avec R
V forment un alkanyle cyclique ou hétéroalkanyle cyclique de cinq à huit membres, où
l'hétéroaryle dans tout R
IV contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
V est absent lorsque E est une liaison directe, H, alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroaryle, ou pris ensemble avec E et R
IV forme un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit membres, où l'hétéroaryle
dans tout R
V contenant hétéroaryle est indépendamment sélectionné dans le groupe consistant en
chroményle, cinnolinyle, furanyle, imidazolyle, indazolyle, indolyle, indolizinyle,
isobenzofuranyle, isochroményle, isoindolyle, isoquinolinyle, isothiazolyle, isoxazolyle,
naphthyridinyle, oxadiazolyle, oxazolyle, périmidinyle, phthalazinyle, ptéridinyle,
purinyle, pyranyle, pyrazinyle, pyrazolyle, pyridazinyle, pyridinyle, pyrimidinyle,
pyrrolyle, pyrrolizinyle, quinazolinyle, quinolinyle, quinolizinyle, quinoxalinyle,
tétrazolyle, thiadiazolyle, thiazolyle, thiophényle, triazinyle et triazolyle;
R
VII et R
VIII sont indépendamment alkyleC
1-8, aryleC
5-10, aryleC
5-10alkanyleC
1-8 ou pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois
à sept membres;
Prot est un groupe de protection amino sélectionné
dans le groupe consistant en -CO
2R
X, -COR
X et -SO
2R
X; et R
X est alkyleC
1-8, alkanyleC
1-5 substitués par 1-11 atomes de chlore, aryleC
5-10, aryleC
5-10alkanyleC
1-8, hétéroalkanyleC
3-8, hétéroaryleC
5-10 ou Fmoc.
34. Composé de la formule (II)

où Ar
1, Ar
2 et Ar
3 sont indépendamment phényle ou phényle optionnellement substitué par halogène, alkyleC
1-8, alkyloxyC
1-8, nitro, alkylaminoC
1-8, nitrile ou benzoyloxy.
35. Composé selon l'une quelconque des revendications 29 à 33, où Prot est Boc, Fmoc,
Alloc, Cbz, Ts ou Mtr.
36. Composé selon l'une quelconque des revendications 29 et 31 à 33, où Prot est Boc ou
Cbz.
37. Composé selon l'une quelconque des revendications 29 et 31 à 33, où Prot est Boc.
38. Composé selon l'une quelconque des revendications 30 et 34, où Ar1, Ar2 et Ar3 sont phényle.
39. Composé selon l'une quelconque des revendications 29 à 33, où X est N.
40. Composé selon l'une quelconque des revendications 29 à 33, où A est C.
41. Composé selon l'une quelconque des revendications 29 à 33, où Y est C.
42. Composé selon l'une quelconque des revendications 29 à 33, où X est N, A est C et
Y est C.
43. Composé selon l'une quelconque des revendications 30 ou 32, où Q est S.
44. Composé selon l'une quelconque des revendications 29 à 33, où E est une liaison directe
et RV est absent.
45. Composé selon l'une quelconque des revendications 29 à 33, où R est H.
46. Composé selon l'une quelconque des revendications 29 à 33, où RI est H.
47. Composé selon l'une quelconque des revendications 29 à 33, où R et RI pris ensemble sont -(CH=CH)2-.
48. Composé selon l'une quelconque des revendications 29 à 33, où RIV est alkyleC1-8aryleC5-10alkanyleC1-8 ou bien aryleC5-10hétéroalkyleC1-8.
49. Composé selon l'une quelconque des revendications 29 à 33, où RIV est méthyle, benzyle ou -CH2OCH2C6H5.
50. Composé selon l'une quelconque des revendications 29 à 33, où RV est absent ou H.
51. Composé selon l'une quelconque des revendications 29 à 33, où RIV et RV ensemble avec E forment un alkyle cyclique ou hétéroalkyle cyclique de cinq à huit
membres.
52. Composé selon l'une quelconque des revendications 29 à 33, où RIV et RV ensemble avec E forment un alkanyle cyclique à 6 membres.
53. Composé selon l'une quelconque des revendications 30 ou 32, où RVI est NMe2.
54. Composé selon l'une quelconque des revendications 29 à 33, où RVII est alkyleC1-8.
55. Composé selon l'une quelconque des revendications 29 à 33, où RVIII est alkyleC1-8.
56. Composé selon l'une quelconque des revendications 29 à 33, où RVII et RVIII pris ensemble forment un alkanyle cyclique ou hétéroalkanyle cyclique de trois à
sept membres.